Upward and onward to greater glory!
up vote
15
down vote
favorite
May this challenge serve as (another) tribute to Stan Lee, who passed away aged 95.
Stan Lee has left us an invaluable legacy and a peculiar catch word: Excelsior. So here's a small challenge based on what he said it was its meaning:
Finally, what does “Excelsior” mean? “Upward and onward to greater glory!” That’s what I wish you whenever I finish tweeting! Excelsior!
Challenge
Given a series of non-negative integers, output a line with Excelsior!
every time an integer is greater than the previous one.
Rules
- Input will be an array of non-negative integers.
- Output will consist of lines with the word
Excelsior
(case does matter) followed by as many!
as the length of the current run of increasingly greater numbers. You can also return an array of strings. - Input and output formats are flexible according to the site rules, so feel free to adapt them to your language formats. You can also add spaces at the end of the lines, or even extra new lines after or before the text if you need.
Examples
Input Output
-----------------------------------
[3,2,1,0,5] Excelsior! // Excelsior because 5 > 0
[1,2,3,4,5] Excelsior! // Excelsior because 2 > 1
Excelsior!! // Excelsior because 3 > 2 (run length: 2)
Excelsior!!! // Excelsior because 4 > 3 (run length: 3)
Excelsior!!!! // Excelsior because 5 > 4 (run length: 4)
<Nothing>
[42] <Nothing>
[1,2,1,3,4,1,5] Excelsior! // Excelsior because 2 > 1
Excelsior! // Excelsior because 3 > 1
Excelsior!! // Excelsior because 4 > 3 (run length: 2)
Excelsior! // Excelsior because 5 > 1
[3,3,3,3,4,3] Excelsior! // Excelsior because 4 > 3
This is code-golf, so may the shortest code for each language win!
code-golf string number
|
show 2 more comments
up vote
15
down vote
favorite
May this challenge serve as (another) tribute to Stan Lee, who passed away aged 95.
Stan Lee has left us an invaluable legacy and a peculiar catch word: Excelsior. So here's a small challenge based on what he said it was its meaning:
Finally, what does “Excelsior” mean? “Upward and onward to greater glory!” That’s what I wish you whenever I finish tweeting! Excelsior!
Challenge
Given a series of non-negative integers, output a line with Excelsior!
every time an integer is greater than the previous one.
Rules
- Input will be an array of non-negative integers.
- Output will consist of lines with the word
Excelsior
(case does matter) followed by as many!
as the length of the current run of increasingly greater numbers. You can also return an array of strings. - Input and output formats are flexible according to the site rules, so feel free to adapt them to your language formats. You can also add spaces at the end of the lines, or even extra new lines after or before the text if you need.
Examples
Input Output
-----------------------------------
[3,2,1,0,5] Excelsior! // Excelsior because 5 > 0
[1,2,3,4,5] Excelsior! // Excelsior because 2 > 1
Excelsior!! // Excelsior because 3 > 2 (run length: 2)
Excelsior!!! // Excelsior because 4 > 3 (run length: 3)
Excelsior!!!! // Excelsior because 5 > 4 (run length: 4)
<Nothing>
[42] <Nothing>
[1,2,1,3,4,1,5] Excelsior! // Excelsior because 2 > 1
Excelsior! // Excelsior because 3 > 1
Excelsior!! // Excelsior because 4 > 3 (run length: 2)
Excelsior! // Excelsior because 5 > 1
[3,3,3,3,4,3] Excelsior! // Excelsior because 4 > 3
This is code-golf, so may the shortest code for each language win!
code-golf string number
ouflak assumes integers are 1 digit long, is that ok
– ASCII-only
Nov 14 at 10:48
1
@ASCII-only not really. I don't know if LUA has a limitation with that, but if that's not the case ouflak should parse integers of any length.
– Charlie
Nov 14 at 11:04
@Charlie I don't know Lua, but although it's verbose, it is possible to take for example a space-delimited input and split like this.
– Kevin Cruijssen
Nov 14 at 13:59
I'm looking at it. The trick is to be able to handle both scenarios.
– ouflak
Nov 14 at 14:17
FWIW languages like C or Javascript will only handle integers within its precision (9/16 digits) anyway.
– user202729
Nov 14 at 16:20
|
show 2 more comments
up vote
15
down vote
favorite
up vote
15
down vote
favorite
May this challenge serve as (another) tribute to Stan Lee, who passed away aged 95.
Stan Lee has left us an invaluable legacy and a peculiar catch word: Excelsior. So here's a small challenge based on what he said it was its meaning:
Finally, what does “Excelsior” mean? “Upward and onward to greater glory!” That’s what I wish you whenever I finish tweeting! Excelsior!
Challenge
Given a series of non-negative integers, output a line with Excelsior!
every time an integer is greater than the previous one.
Rules
- Input will be an array of non-negative integers.
- Output will consist of lines with the word
Excelsior
(case does matter) followed by as many!
as the length of the current run of increasingly greater numbers. You can also return an array of strings. - Input and output formats are flexible according to the site rules, so feel free to adapt them to your language formats. You can also add spaces at the end of the lines, or even extra new lines after or before the text if you need.
Examples
Input Output
-----------------------------------
[3,2,1,0,5] Excelsior! // Excelsior because 5 > 0
[1,2,3,4,5] Excelsior! // Excelsior because 2 > 1
Excelsior!! // Excelsior because 3 > 2 (run length: 2)
Excelsior!!! // Excelsior because 4 > 3 (run length: 3)
Excelsior!!!! // Excelsior because 5 > 4 (run length: 4)
<Nothing>
[42] <Nothing>
[1,2,1,3,4,1,5] Excelsior! // Excelsior because 2 > 1
Excelsior! // Excelsior because 3 > 1
Excelsior!! // Excelsior because 4 > 3 (run length: 2)
Excelsior! // Excelsior because 5 > 1
[3,3,3,3,4,3] Excelsior! // Excelsior because 4 > 3
This is code-golf, so may the shortest code for each language win!
code-golf string number
May this challenge serve as (another) tribute to Stan Lee, who passed away aged 95.
Stan Lee has left us an invaluable legacy and a peculiar catch word: Excelsior. So here's a small challenge based on what he said it was its meaning:
Finally, what does “Excelsior” mean? “Upward and onward to greater glory!” That’s what I wish you whenever I finish tweeting! Excelsior!
Challenge
Given a series of non-negative integers, output a line with Excelsior!
every time an integer is greater than the previous one.
Rules
- Input will be an array of non-negative integers.
- Output will consist of lines with the word
Excelsior
(case does matter) followed by as many!
as the length of the current run of increasingly greater numbers. You can also return an array of strings. - Input and output formats are flexible according to the site rules, so feel free to adapt them to your language formats. You can also add spaces at the end of the lines, or even extra new lines after or before the text if you need.
Examples
Input Output
-----------------------------------
[3,2,1,0,5] Excelsior! // Excelsior because 5 > 0
[1,2,3,4,5] Excelsior! // Excelsior because 2 > 1
Excelsior!! // Excelsior because 3 > 2 (run length: 2)
Excelsior!!! // Excelsior because 4 > 3 (run length: 3)
Excelsior!!!! // Excelsior because 5 > 4 (run length: 4)
<Nothing>
[42] <Nothing>
[1,2,1,3,4,1,5] Excelsior! // Excelsior because 2 > 1
Excelsior! // Excelsior because 3 > 1
Excelsior!! // Excelsior because 4 > 3 (run length: 2)
Excelsior! // Excelsior because 5 > 1
[3,3,3,3,4,3] Excelsior! // Excelsior because 4 > 3
This is code-golf, so may the shortest code for each language win!
code-golf string number
code-golf string number
asked Nov 14 at 7:42
Charlie
7,2962388
7,2962388
ouflak assumes integers are 1 digit long, is that ok
– ASCII-only
Nov 14 at 10:48
1
@ASCII-only not really. I don't know if LUA has a limitation with that, but if that's not the case ouflak should parse integers of any length.
– Charlie
Nov 14 at 11:04
@Charlie I don't know Lua, but although it's verbose, it is possible to take for example a space-delimited input and split like this.
– Kevin Cruijssen
Nov 14 at 13:59
I'm looking at it. The trick is to be able to handle both scenarios.
– ouflak
Nov 14 at 14:17
FWIW languages like C or Javascript will only handle integers within its precision (9/16 digits) anyway.
– user202729
Nov 14 at 16:20
|
show 2 more comments
ouflak assumes integers are 1 digit long, is that ok
– ASCII-only
Nov 14 at 10:48
1
@ASCII-only not really. I don't know if LUA has a limitation with that, but if that's not the case ouflak should parse integers of any length.
– Charlie
Nov 14 at 11:04
@Charlie I don't know Lua, but although it's verbose, it is possible to take for example a space-delimited input and split like this.
– Kevin Cruijssen
Nov 14 at 13:59
I'm looking at it. The trick is to be able to handle both scenarios.
– ouflak
Nov 14 at 14:17
FWIW languages like C or Javascript will only handle integers within its precision (9/16 digits) anyway.
– user202729
Nov 14 at 16:20
ouflak assumes integers are 1 digit long, is that ok
– ASCII-only
Nov 14 at 10:48
ouflak assumes integers are 1 digit long, is that ok
– ASCII-only
Nov 14 at 10:48
1
1
@ASCII-only not really. I don't know if LUA has a limitation with that, but if that's not the case ouflak should parse integers of any length.
– Charlie
Nov 14 at 11:04
@ASCII-only not really. I don't know if LUA has a limitation with that, but if that's not the case ouflak should parse integers of any length.
– Charlie
Nov 14 at 11:04
@Charlie I don't know Lua, but although it's verbose, it is possible to take for example a space-delimited input and split like this.
– Kevin Cruijssen
Nov 14 at 13:59
@Charlie I don't know Lua, but although it's verbose, it is possible to take for example a space-delimited input and split like this.
– Kevin Cruijssen
Nov 14 at 13:59
I'm looking at it. The trick is to be able to handle both scenarios.
– ouflak
Nov 14 at 14:17
I'm looking at it. The trick is to be able to handle both scenarios.
– ouflak
Nov 14 at 14:17
FWIW languages like C or Javascript will only handle integers within its precision (9/16 digits) anyway.
– user202729
Nov 14 at 16:20
FWIW languages like C or Javascript will only handle integers within its precision (9/16 digits) anyway.
– user202729
Nov 14 at 16:20
|
show 2 more comments
30 Answers
30
active
oldest
votes
up vote
9
down vote
JavaScript (ES6), 58 54 bytes
a=>a.map(c=>a<(a=c)?`Excelsior${s+='!'}
`:s='').join``
Try it online!
Commented
a => // a = input array, also used to store the previous value
a.map(c => // for each value c in a:
a < // compare the previous value
(a = c) // with the current one; update a to c
// this test is always falsy on the 1st iteration
? // if a is less than c:
`Excelsior${s += '!'}n` // add a '!' to s and yield 'Excelsior' + s + linefeed
: // else:
s = '' // reset s to an empty string and yield an empty string
).join`` // end of map(); join everything
Why re-using a[ ] to store the previous value is safe
There are three possible cases:
- If $a[text{ }]$ is empty, the callback function of
.map()
is not invoked at all and we just get an empty array, yielding an empty string. - If $a[text{ }]$ contains exactly one element $x$, it is coerced to that element during the first (and unique) test
a < (a = c)
. So, we're testing $x < x$, which is falsy. We get an array containing an empty string, yielding again an empty string. - If $a[text{ }]$ contains several elements, it is coerced to
NaN
during the first testa < (a = c)
. Therefore, the result is falsy and what's executed is the initialization of $s$ to an empty string -- which is what we want. The first meaningful comparison occurs at the 2nd iteration.
add a comment |
up vote
5
down vote
Python 2, 84 83 81 70 68 bytes
a=n=''
for b in input():
n+='!';n*=a<b;a=b
if n:print'Excelsior'+n
Try it online!
-2 bytes, thanks to ASCII-only
68?
– ASCII-only
Nov 14 at 9:31
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
functions are too long :(
– ASCII-only
Nov 14 at 9:46
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
same with zip
– ASCII-only
Nov 14 at 9:50
add a comment |
up vote
5
down vote
05AB1E, 26 24 23 bytes
ü‹γvyOE.•1Š¥èò²•™N'!׫,
-2 bytes thanks to @Kroppeb.
Try it online or verify all test cases.
Explanation:
ü # Loop over the (implicit) input as pairs
‹ # And check for each pair [a,b] if a<b is truthy
# i.e. [1,2,1,3,4,1,5,7,20,25,3,17]
# → [1,0,1,1,0,1,1,1,1,0,1]
γ # Split it into chunks of equal elements
# i.e. [1,0,1,1,0,1,1,1,1,0,1]
# → [[1],[0],[1,1],[0],[1,1,1,1],[0],[1]]
vy # Foreach `y` over them
O # Take the sum of that inner list
# i.e. [1,1,1,1] → 4
# i.e. [0] → 0
E # Inner loop `N` in the range [1, length]:
.•1Š¥èò²• # Push string "excelsior"
™ # Titlecase it: "Excelsior"
N'!׫ '# Append `N` amount of "!"
# i.e. N=3 → "Excelsior!!!"
, # Output with a trailing newline
See this 05AB1E tip of mine (section How to compress strings not part of the dictionary?) to understand why .•1Š¥èò²•
is "excelsior"
.
2
I don't really know 05AB1E but can't you exchange the0Kg
withO
?
– Kroppeb
Nov 14 at 10:39
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
add a comment |
up vote
5
down vote
Perl 6, 60 58 57 bytes
-1 byte thanks to nwellnhof
{"Excelsior"X~("!"Xx grep +*,[[&(-+^*×*)]] .skip Z>$_)}
Try it online!
Anonymous code block that returns a list of Excelsiors!
add a comment |
up vote
4
down vote
Java-8 118 113 Bytes
n->{String e="";for(int i=0;i<n.length-1;)System.out.print(""==(n[i+1]>n[i++]?e+="!":(e=""))?e:"Excelsior"+e+"n");}
Easy to read :
private static void lee(int num) {
String exclamation = "";
for (int i = 0; i < num.length - 1;) {
exclamation = num[i + 1] > num[i++] ? exclamation += "!" : "";
System.out.print("".equals(exclamation) ? "" : "Excelsior" + exclamation + "n");
}
}
2
Here some golfs to save 10 bytes:n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)
– Kevin Cruijssen
Nov 14 at 10:38
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
2
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)
– Olivier Grégoire
Nov 14 at 14:34
Fixing my issue:++e
instead ofe++
so that there is at least one!
to be printed.
– Olivier Grégoire
Nov 15 at 10:39
1
@KevinCruijssen Small typo in your golf to make you gain one byte:e=...?e+"!":
instead ofe=...?e+="!":
.
– Olivier Grégoire
Nov 20 at 14:57
add a comment |
up vote
4
down vote
R, 86 bytes
Half of this answer is @Giuseppe's. RIP Stan Lee.
function(a)for(i in diff(a))"if"(i>0,cat("Excelsior",rep("!",F<-F+1),"
",sep=""),F<-0)
Try it online!
add a comment |
up vote
4
down vote
05AB1E, 20 19 bytes
ü‹0¡€ƶ˜ε'!×”¸Îsiorÿ
Try it online!
Explanation
ü‹ # pair-wise comparison, less-than
0¡ # split at zeroes
€ƶ # lift each, multiplying by its 1-based index
˜ # flatten
ε # apply to each
'!× # repeat "!" that many times
ÿ # and interpolate it at the end of
”¸Îsior # the compressed word "Excel" followed by the string "sior"
add a comment |
up vote
4
down vote
C (gcc/clang), 106 99 97 bytes
f(a,n)int*a;{int r=0,s[n];for(memset(s,33,n);n-->1;)r*=*a<*++a&&printf("Excelsior%.*sn",++r,s);}
Thanks to gastropner for golfing 2 bytes.
Try it online here.
Ungolfed:
f(a, n) // function taking a pointer to the first integer and the length of the array
int *a; { // a is of type pointer to int, n is of type int
int r = 0, // length of the current run
i = 0, // loop variable
s[n]; // buffer for exclamation marks; we will never need more than n-1 of those (we are declaring an array of int, but really we will treat it as an array of char)
for(memset(s, 33, n); // fill the buffer with n exclamation marks (ASCII code 33)
n -- > 1; ) // loop over the array
r *= *a < *(++ a) // if the current element is less than the next:
&& printf("Excelsior%.*sn", // print (on their own line) "Excelsior", followed by ...
++ r, // ... r (incremented) of the ...
s) // ... n exclamation marks in the buffer s
; // else r is reset to 0
}
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
add a comment |
up vote
4
down vote
Japt -R
, 25 22 bytes
ò¨ ËÅ£`ExlÐâ`ú'!Y+A
c
Try it
3 bytes saved thanks to Kamil
ò¨ :Partition at items that are greater than or equal to the previous item
Ë :Map
Å : Slice off the first element
£ : Map each element at 0-based index Y
`ExlÐâ` : Compressed string "Excelsior"
ú'! : Right pad with exclamation marks
Y+A : To length Y+10
c :Flatten
:Implicitly join with newlines & output
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
The-R
flag isn't actually necessary, the challenge says you can output an array of strings.
– Kamil Drakari
Nov 14 at 15:33
Nice one, thanks, @KamilDrakari. I tried a solution usingslice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.
– Shaggy
Nov 16 at 16:29
add a comment |
up vote
3
down vote
Common Lisp, 111 bytes
(setq i 0)(loop for(a b)on(read)do(incf i(if(and b(> b a))1(- i)))(format(> i 0)"Excelsior~v@{~a~:*~}~%"i #!))
Try it online!
add a comment |
up vote
3
down vote
Java 8, 106 bytes
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]<n[i]?"Excelsior"+(s+="!")+"n":(s="")+s;return z;}
Try it online!
(those reassignments of s
...yikes)
You can golf two more bytes by replacing(s="")+s
=>(s="")
– O.O.Balance
Nov 15 at 10:38
1
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move thes=""
to spare bytes.
– Olivier Grégoire
Nov 15 at 10:41
add a comment |
up vote
3
down vote
Stax, 17 bytes
Θx7├╖&σ '@7g┼┘Ñ«═
Run and debug it
add a comment |
up vote
3
down vote
R, 111 bytes
function(a,r=rle(sign(diff(a))),v=r$l[r$v>0])write(paste0(rep("Excelsior",sum(v)),strrep("!",sequence(v))),1,1)
Try it online!
A far better R tribute can be found here -- I was too fixated on sequence
and rle
.
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
2
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
add a comment |
up vote
3
down vote
Jelly, 16 bytes
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ
A monadic Link yielding a list of lists of characters.
Try it online! (footer joins with newlines)
How?
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ - Link: list of integers e.g. [1,1,4,2,1,1,3,4]
Ɲ - for each pair of integers: [1,1] [1,4] [4,2] [2,1] [1,1] [1,3] [3,4]
< - less than? [ 0, 1, 0, 0, 0, 1, 1]
ṣ0 - split at zeros [, [1], , , [1, 1]]
Ä - cumulative sums [, [1], , , [1, 2]]
Ẏ - tighten [1,1,2]
”! - literal '!' character '!'
ẋ - repeat (vectorises) [['!'],['!'],['!','!']]
“Ø6ḥ» - dictionary lookup ['E','x','c','e','l','s','i','o','r']
Ɱ - map with:
; - concatenate [['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!','!']]
add a comment |
up vote
3
down vote
Perl 5 -n
, 41 bytes
$_>$l&&$l?say$c.='!':($c=Excelsior);$l=$_
Try it online!
Takes its input on separate lines.
add a comment |
up vote
3
down vote
Japt, 22 bytes
ò¨ ®£`ExlÐâ`+'!pYÃÅÃc
Try it online!
Explanation, with simplified example:
ò¨ :Split whenever the sequence does not increase
e.g. [2,1,1,3] -> [[2],[1],[1,3]]
® Ã :For each sub-array:
£ Ã : For each item in that sub-array:
`ExlÐâ` : Compressed "Excelsior"
+ : Concat with
'!pY : a number of "!" equal to the index
e.g. [1,3] -> ["Excelsior","Excelsior!"]
Å : Remove the first item of each sub-array
e.g. [[Excelsior],[Excelsior],[Excelsior,Excelsior!]]->[,,[Excelsior!]]
c :Flatten
e.g. [,,[Excelsior!]] -> [Excelsior!]
add a comment |
up vote
3
down vote
Powershell, 69 bytes
$args|%{if($o-ne$e-and$_-gt$o){'Excelsior'+'!'*++$c}else{$c=0}$o=$_}
Less golfed test script:
$f = {
$args|%{
if($old-ne$empty-and$_-gt$old){
'Excelsior'+'!'*++$c
}else{
$c=0
}
$old=$_
}
}
@(
,( (3,2,1,0,5), 'Excelsior!') # Excelsior because 5 > 0
,( (1,2,3,4,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!!', # Excelsior because 3 > 2 (run length: 2)
'Excelsior!!!', # Excelsior because 4 > 3 (run length: 3)
'Excelsior!!!!') # Excelsior because 5 > 4 (run length: 4)
,( $null, '') # <Nothing>
,( (42), '') # <Nothing>
,( (1,2,1,3,4,1,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!', # Excelsior because 3 > 1
'Excelsior!!', # Excelsior because 4 > 3 (run length: 2)
'Excelsior!') # Excelsior because 5 > 1
,( (3,3,3,3,4,3), 'Excelsior!') # Excelsior because 4 > 3
) | % {
$a,$expected = $_
$result = &$f @a
"$result"-eq"$expected"
$result
}
Output:
True
Excelsior!
True
Excelsior!
Excelsior!!
Excelsior!!!
Excelsior!!!!
True
True
True
Excelsior!
Excelsior!
Excelsior!!
Excelsior!
True
Excelsior!
1
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
add a comment |
up vote
3
down vote
PowerShell, 87 85 bytes
param($n)for(;++$i-lt$n.count){if($n[$i]-gt$n[$i-1]){"Excelsior"+"!"*++$c}else{$c=0}}
Try it online!
There's probably a restructuring hiding in there, most likely in the if-else, but overall pretty alright. Uses the ol' "Un-instantiated variable defaults to 0" trick for both making the index and the !
.
add a comment |
up vote
2
down vote
Retina, 55 bytes
d+
*
L$rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Excelsior$#1*!
Try it online! Link includes test cases. Explanation:
d+
*
Convert to unary.
rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Process overlapping matches from right to left (although the matches are then listed from left to right). This means that we can match every number in a run, and the match extends to the start of the run. Each match is further constrained that each additional matched number must be less than the previously matched additional number, or the first number if no additional numbers have been matched yet.
L$...
Excelsior$#1*!
For each match, output Excelsior
with the number of additional numbers in the run as desired.
add a comment |
up vote
2
down vote
Pyth, 32 bytes
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0
Try it online here, or verify all the test cases at once here.
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0 Implicit: Q=eval(input())
.+Q Get forward difference between consecutive elements of Q
.u 0 Reduce the above, returning all steps, with current value N starting at 0, next element as Y, using:
hN N+1
* Multiplied by
<0Y 1 if 0<Y, 0 otherwise
fT Filter to remove 0s
*L! Repeat "!" each element number of times
+L"Excelsior" Prepend "Excelsior" to each
j Join on newlines, implicit print
add a comment |
up vote
2
down vote
Jelly, 18 bytes
<Ɲ‘×¥ḟ0”!ẋ“Ø6ḥ»;Ɱ
Try it online!
Output prettified over TIO.
add a comment |
up vote
2
down vote
Lua, 88 87 83 82 96 95 113 bytes
Thanks @Kevin Cruijssen for update adhering to spirit of original question.
s=io.read()n=9 e="Excelsior!"f=e
for c in s.gmatch(s,"%S+")do if n<c+0then print(e)e=e..'!'else e=f end n=c+0 end
Try it online!
1
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
1
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
2
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
add a comment |
up vote
2
down vote
C++ 14 (g++), 123 118 bytes
(auto a){for(int n=0,i=0;++i<a.size();)a[i]>a[i-1]?puts(&("Excelsior"+std::string(++n,33))[0]):n=0;}
Fortunately std::string
has a constructor that repeats a char
. Try it online here.
Thanks to gastropner for saving 5 bytes.
Ungolfed:
(auto a) { // void lambda taking a std::array of integer
for(int n = 0, // length of the current run
i = 0; // loop variable
++ i < a.size(); ) // start with the second element and loop to the last
a[i] > a[i - 1] // if the current element is greater than the previous ...
? puts( // ... print a new line:
&("Excelsior" + // "Excelsior, followed by ...
std::string(++ n, 33)) // ... the appropriate number of exclamation marks (33 is ASCII code for '!'); increment the run length
[0]) // puts() takes a C string
: n = 0; // else reset run length
}
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
add a comment |
up vote
2
down vote
C# (.NET Core), 115 107 105 bytes
a=>{var b="";for(int i=0;++i<a.Length;)if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));else b="";}
Try it online!
-8 bytes: changed b
to a string holding "!"s from an int counter
-2 bytes: set b+="!"
as an inline function (thanks to Zac Faragher)
Uses an Action delegate to pull in the input and not require a return.
Ungolfed:
a => {
var b = ""; // initialize the '!' string (b)
for(int i = 0; ++i < a.Length;) // from index 1 until the end of a
if(a[i] > a[i - 1]) // if the current index is greater than the previous index
Console.WriteLine("Excelsior" + // on a new line, print "Excelsior"
(b += "!")); // add a "!" to b, and print the string
else // if the current index is not greater than the previous index
b = ""; // reset b
}
1
you can save 2 bytes by making theb+="!"
inline with the Excelsiorif(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!
– Zac Faragher
Nov 16 at 3:48
add a comment |
up vote
2
down vote
PHP, 117 109 bytes
<?php do{$i=next($argv);if($p!==null&&$p<$i){$e.='!';echo "
Excelsior$e";}else$e='';$p=$i;}while($i!==false);
Try it online!
add a comment |
up vote
2
down vote
J, 50 bytes
'Excelsior',"1'!'#"0~[:;@(([:<+/);._1)0,2</ ::0]
Try it online!
ungolfed
'Excelsior' ,"1 '!' #"0~ [: ;@(([: < +/);._1) 0 , 2 </ ::0 ]
add a comment |
up vote
1
down vote
Java, 113 bytes
String i="";for(int a=0;a<s.length-1;a++){if(s[a+1]>s[a]){i+="!";System.out.println("Excelsior"+i);}else{i="";}}
add a comment |
up vote
1
down vote
VBA, 114 bytes
For i=0 To UBound(a)-LBound(a)-1 If a(i+1)>a(i)Then s=s&"!" Debug.Print("Excelsior"&s&"") Else s="" End If Next i
add a comment |
up vote
1
down vote
Python 3, 87 bytes
c='!'
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
Or 97 with the following:
c='!';n=input()
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
This assumes inputs will be in the format:
32105
12345
<null input>
1
1213415
333343
1
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
add a comment |
up vote
1
down vote
Japt, 25 bytes
ä< ®?`ExlÐâ`+'!p°T:T=0
f
Try it online!
add a comment |
30 Answers
30
active
oldest
votes
30 Answers
30
active
oldest
votes
active
oldest
votes
active
oldest
votes
up vote
9
down vote
JavaScript (ES6), 58 54 bytes
a=>a.map(c=>a<(a=c)?`Excelsior${s+='!'}
`:s='').join``
Try it online!
Commented
a => // a = input array, also used to store the previous value
a.map(c => // for each value c in a:
a < // compare the previous value
(a = c) // with the current one; update a to c
// this test is always falsy on the 1st iteration
? // if a is less than c:
`Excelsior${s += '!'}n` // add a '!' to s and yield 'Excelsior' + s + linefeed
: // else:
s = '' // reset s to an empty string and yield an empty string
).join`` // end of map(); join everything
Why re-using a[ ] to store the previous value is safe
There are three possible cases:
- If $a[text{ }]$ is empty, the callback function of
.map()
is not invoked at all and we just get an empty array, yielding an empty string. - If $a[text{ }]$ contains exactly one element $x$, it is coerced to that element during the first (and unique) test
a < (a = c)
. So, we're testing $x < x$, which is falsy. We get an array containing an empty string, yielding again an empty string. - If $a[text{ }]$ contains several elements, it is coerced to
NaN
during the first testa < (a = c)
. Therefore, the result is falsy and what's executed is the initialization of $s$ to an empty string -- which is what we want. The first meaningful comparison occurs at the 2nd iteration.
add a comment |
up vote
9
down vote
JavaScript (ES6), 58 54 bytes
a=>a.map(c=>a<(a=c)?`Excelsior${s+='!'}
`:s='').join``
Try it online!
Commented
a => // a = input array, also used to store the previous value
a.map(c => // for each value c in a:
a < // compare the previous value
(a = c) // with the current one; update a to c
// this test is always falsy on the 1st iteration
? // if a is less than c:
`Excelsior${s += '!'}n` // add a '!' to s and yield 'Excelsior' + s + linefeed
: // else:
s = '' // reset s to an empty string and yield an empty string
).join`` // end of map(); join everything
Why re-using a[ ] to store the previous value is safe
There are three possible cases:
- If $a[text{ }]$ is empty, the callback function of
.map()
is not invoked at all and we just get an empty array, yielding an empty string. - If $a[text{ }]$ contains exactly one element $x$, it is coerced to that element during the first (and unique) test
a < (a = c)
. So, we're testing $x < x$, which is falsy. We get an array containing an empty string, yielding again an empty string. - If $a[text{ }]$ contains several elements, it is coerced to
NaN
during the first testa < (a = c)
. Therefore, the result is falsy and what's executed is the initialization of $s$ to an empty string -- which is what we want. The first meaningful comparison occurs at the 2nd iteration.
add a comment |
up vote
9
down vote
up vote
9
down vote
JavaScript (ES6), 58 54 bytes
a=>a.map(c=>a<(a=c)?`Excelsior${s+='!'}
`:s='').join``
Try it online!
Commented
a => // a = input array, also used to store the previous value
a.map(c => // for each value c in a:
a < // compare the previous value
(a = c) // with the current one; update a to c
// this test is always falsy on the 1st iteration
? // if a is less than c:
`Excelsior${s += '!'}n` // add a '!' to s and yield 'Excelsior' + s + linefeed
: // else:
s = '' // reset s to an empty string and yield an empty string
).join`` // end of map(); join everything
Why re-using a[ ] to store the previous value is safe
There are three possible cases:
- If $a[text{ }]$ is empty, the callback function of
.map()
is not invoked at all and we just get an empty array, yielding an empty string. - If $a[text{ }]$ contains exactly one element $x$, it is coerced to that element during the first (and unique) test
a < (a = c)
. So, we're testing $x < x$, which is falsy. We get an array containing an empty string, yielding again an empty string. - If $a[text{ }]$ contains several elements, it is coerced to
NaN
during the first testa < (a = c)
. Therefore, the result is falsy and what's executed is the initialization of $s$ to an empty string -- which is what we want. The first meaningful comparison occurs at the 2nd iteration.
JavaScript (ES6), 58 54 bytes
a=>a.map(c=>a<(a=c)?`Excelsior${s+='!'}
`:s='').join``
Try it online!
Commented
a => // a = input array, also used to store the previous value
a.map(c => // for each value c in a:
a < // compare the previous value
(a = c) // with the current one; update a to c
// this test is always falsy on the 1st iteration
? // if a is less than c:
`Excelsior${s += '!'}n` // add a '!' to s and yield 'Excelsior' + s + linefeed
: // else:
s = '' // reset s to an empty string and yield an empty string
).join`` // end of map(); join everything
Why re-using a[ ] to store the previous value is safe
There are three possible cases:
- If $a[text{ }]$ is empty, the callback function of
.map()
is not invoked at all and we just get an empty array, yielding an empty string. - If $a[text{ }]$ contains exactly one element $x$, it is coerced to that element during the first (and unique) test
a < (a = c)
. So, we're testing $x < x$, which is falsy. We get an array containing an empty string, yielding again an empty string. - If $a[text{ }]$ contains several elements, it is coerced to
NaN
during the first testa < (a = c)
. Therefore, the result is falsy and what's executed is the initialization of $s$ to an empty string -- which is what we want. The first meaningful comparison occurs at the 2nd iteration.
edited Nov 14 at 11:12
answered Nov 14 at 10:20
Arnauld
69.8k686294
69.8k686294
add a comment |
add a comment |
up vote
5
down vote
Python 2, 84 83 81 70 68 bytes
a=n=''
for b in input():
n+='!';n*=a<b;a=b
if n:print'Excelsior'+n
Try it online!
-2 bytes, thanks to ASCII-only
68?
– ASCII-only
Nov 14 at 9:31
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
functions are too long :(
– ASCII-only
Nov 14 at 9:46
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
same with zip
– ASCII-only
Nov 14 at 9:50
add a comment |
up vote
5
down vote
Python 2, 84 83 81 70 68 bytes
a=n=''
for b in input():
n+='!';n*=a<b;a=b
if n:print'Excelsior'+n
Try it online!
-2 bytes, thanks to ASCII-only
68?
– ASCII-only
Nov 14 at 9:31
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
functions are too long :(
– ASCII-only
Nov 14 at 9:46
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
same with zip
– ASCII-only
Nov 14 at 9:50
add a comment |
up vote
5
down vote
up vote
5
down vote
Python 2, 84 83 81 70 68 bytes
a=n=''
for b in input():
n+='!';n*=a<b;a=b
if n:print'Excelsior'+n
Try it online!
-2 bytes, thanks to ASCII-only
Python 2, 84 83 81 70 68 bytes
a=n=''
for b in input():
n+='!';n*=a<b;a=b
if n:print'Excelsior'+n
Try it online!
-2 bytes, thanks to ASCII-only
edited Nov 14 at 9:34
answered Nov 14 at 7:55
TFeld
13.7k21139
13.7k21139
68?
– ASCII-only
Nov 14 at 9:31
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
functions are too long :(
– ASCII-only
Nov 14 at 9:46
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
same with zip
– ASCII-only
Nov 14 at 9:50
add a comment |
68?
– ASCII-only
Nov 14 at 9:31
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
functions are too long :(
– ASCII-only
Nov 14 at 9:46
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
same with zip
– ASCII-only
Nov 14 at 9:50
68?
– ASCII-only
Nov 14 at 9:31
68?
– ASCII-only
Nov 14 at 9:31
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
@ASCII-only Thanks :)
– TFeld
Nov 14 at 9:34
functions are too long :(
– ASCII-only
Nov 14 at 9:46
functions are too long :(
– ASCII-only
Nov 14 at 9:46
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
well, recursive approaches at least
– ASCII-only
Nov 14 at 9:48
same with zip
– ASCII-only
Nov 14 at 9:50
same with zip
– ASCII-only
Nov 14 at 9:50
add a comment |
up vote
5
down vote
05AB1E, 26 24 23 bytes
ü‹γvyOE.•1Š¥èò²•™N'!׫,
-2 bytes thanks to @Kroppeb.
Try it online or verify all test cases.
Explanation:
ü # Loop over the (implicit) input as pairs
‹ # And check for each pair [a,b] if a<b is truthy
# i.e. [1,2,1,3,4,1,5,7,20,25,3,17]
# → [1,0,1,1,0,1,1,1,1,0,1]
γ # Split it into chunks of equal elements
# i.e. [1,0,1,1,0,1,1,1,1,0,1]
# → [[1],[0],[1,1],[0],[1,1,1,1],[0],[1]]
vy # Foreach `y` over them
O # Take the sum of that inner list
# i.e. [1,1,1,1] → 4
# i.e. [0] → 0
E # Inner loop `N` in the range [1, length]:
.•1Š¥èò²• # Push string "excelsior"
™ # Titlecase it: "Excelsior"
N'!׫ '# Append `N` amount of "!"
# i.e. N=3 → "Excelsior!!!"
, # Output with a trailing newline
See this 05AB1E tip of mine (section How to compress strings not part of the dictionary?) to understand why .•1Š¥èò²•
is "excelsior"
.
2
I don't really know 05AB1E but can't you exchange the0Kg
withO
?
– Kroppeb
Nov 14 at 10:39
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
add a comment |
up vote
5
down vote
05AB1E, 26 24 23 bytes
ü‹γvyOE.•1Š¥èò²•™N'!׫,
-2 bytes thanks to @Kroppeb.
Try it online or verify all test cases.
Explanation:
ü # Loop over the (implicit) input as pairs
‹ # And check for each pair [a,b] if a<b is truthy
# i.e. [1,2,1,3,4,1,5,7,20,25,3,17]
# → [1,0,1,1,0,1,1,1,1,0,1]
γ # Split it into chunks of equal elements
# i.e. [1,0,1,1,0,1,1,1,1,0,1]
# → [[1],[0],[1,1],[0],[1,1,1,1],[0],[1]]
vy # Foreach `y` over them
O # Take the sum of that inner list
# i.e. [1,1,1,1] → 4
# i.e. [0] → 0
E # Inner loop `N` in the range [1, length]:
.•1Š¥èò²• # Push string "excelsior"
™ # Titlecase it: "Excelsior"
N'!׫ '# Append `N` amount of "!"
# i.e. N=3 → "Excelsior!!!"
, # Output with a trailing newline
See this 05AB1E tip of mine (section How to compress strings not part of the dictionary?) to understand why .•1Š¥èò²•
is "excelsior"
.
2
I don't really know 05AB1E but can't you exchange the0Kg
withO
?
– Kroppeb
Nov 14 at 10:39
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
add a comment |
up vote
5
down vote
up vote
5
down vote
05AB1E, 26 24 23 bytes
ü‹γvyOE.•1Š¥èò²•™N'!׫,
-2 bytes thanks to @Kroppeb.
Try it online or verify all test cases.
Explanation:
ü # Loop over the (implicit) input as pairs
‹ # And check for each pair [a,b] if a<b is truthy
# i.e. [1,2,1,3,4,1,5,7,20,25,3,17]
# → [1,0,1,1,0,1,1,1,1,0,1]
γ # Split it into chunks of equal elements
# i.e. [1,0,1,1,0,1,1,1,1,0,1]
# → [[1],[0],[1,1],[0],[1,1,1,1],[0],[1]]
vy # Foreach `y` over them
O # Take the sum of that inner list
# i.e. [1,1,1,1] → 4
# i.e. [0] → 0
E # Inner loop `N` in the range [1, length]:
.•1Š¥èò²• # Push string "excelsior"
™ # Titlecase it: "Excelsior"
N'!׫ '# Append `N` amount of "!"
# i.e. N=3 → "Excelsior!!!"
, # Output with a trailing newline
See this 05AB1E tip of mine (section How to compress strings not part of the dictionary?) to understand why .•1Š¥èò²•
is "excelsior"
.
05AB1E, 26 24 23 bytes
ü‹γvyOE.•1Š¥èò²•™N'!׫,
-2 bytes thanks to @Kroppeb.
Try it online or verify all test cases.
Explanation:
ü # Loop over the (implicit) input as pairs
‹ # And check for each pair [a,b] if a<b is truthy
# i.e. [1,2,1,3,4,1,5,7,20,25,3,17]
# → [1,0,1,1,0,1,1,1,1,0,1]
γ # Split it into chunks of equal elements
# i.e. [1,0,1,1,0,1,1,1,1,0,1]
# → [[1],[0],[1,1],[0],[1,1,1,1],[0],[1]]
vy # Foreach `y` over them
O # Take the sum of that inner list
# i.e. [1,1,1,1] → 4
# i.e. [0] → 0
E # Inner loop `N` in the range [1, length]:
.•1Š¥èò²• # Push string "excelsior"
™ # Titlecase it: "Excelsior"
N'!׫ '# Append `N` amount of "!"
# i.e. N=3 → "Excelsior!!!"
, # Output with a trailing newline
See this 05AB1E tip of mine (section How to compress strings not part of the dictionary?) to understand why .•1Š¥èò²•
is "excelsior"
.
edited Nov 14 at 11:45
answered Nov 14 at 8:49
Kevin Cruijssen
34.4k554182
34.4k554182
2
I don't really know 05AB1E but can't you exchange the0Kg
withO
?
– Kroppeb
Nov 14 at 10:39
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
add a comment |
2
I don't really know 05AB1E but can't you exchange the0Kg
withO
?
– Kroppeb
Nov 14 at 10:39
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
2
2
I don't really know 05AB1E but can't you exchange the
0Kg
with O
?– Kroppeb
Nov 14 at 10:39
I don't really know 05AB1E but can't you exchange the
0Kg
with O
?– Kroppeb
Nov 14 at 10:39
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
@Kroppeb Ah, completely missed that, but yes, I indeed can. Thanks! :)
– Kevin Cruijssen
Nov 14 at 10:42
add a comment |
up vote
5
down vote
Perl 6, 60 58 57 bytes
-1 byte thanks to nwellnhof
{"Excelsior"X~("!"Xx grep +*,[[&(-+^*×*)]] .skip Z>$_)}
Try it online!
Anonymous code block that returns a list of Excelsiors!
add a comment |
up vote
5
down vote
Perl 6, 60 58 57 bytes
-1 byte thanks to nwellnhof
{"Excelsior"X~("!"Xx grep +*,[[&(-+^*×*)]] .skip Z>$_)}
Try it online!
Anonymous code block that returns a list of Excelsiors!
add a comment |
up vote
5
down vote
up vote
5
down vote
Perl 6, 60 58 57 bytes
-1 byte thanks to nwellnhof
{"Excelsior"X~("!"Xx grep +*,[[&(-+^*×*)]] .skip Z>$_)}
Try it online!
Anonymous code block that returns a list of Excelsiors!
Perl 6, 60 58 57 bytes
-1 byte thanks to nwellnhof
{"Excelsior"X~("!"Xx grep +*,[[&(-+^*×*)]] .skip Z>$_)}
Try it online!
Anonymous code block that returns a list of Excelsiors!
edited Nov 14 at 20:44
answered Nov 14 at 10:22
Jo King
19.4k245102
19.4k245102
add a comment |
add a comment |
up vote
4
down vote
Java-8 118 113 Bytes
n->{String e="";for(int i=0;i<n.length-1;)System.out.print(""==(n[i+1]>n[i++]?e+="!":(e=""))?e:"Excelsior"+e+"n");}
Easy to read :
private static void lee(int num) {
String exclamation = "";
for (int i = 0; i < num.length - 1;) {
exclamation = num[i + 1] > num[i++] ? exclamation += "!" : "";
System.out.print("".equals(exclamation) ? "" : "Excelsior" + exclamation + "n");
}
}
2
Here some golfs to save 10 bytes:n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)
– Kevin Cruijssen
Nov 14 at 10:38
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
2
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)
– Olivier Grégoire
Nov 14 at 14:34
Fixing my issue:++e
instead ofe++
so that there is at least one!
to be printed.
– Olivier Grégoire
Nov 15 at 10:39
1
@KevinCruijssen Small typo in your golf to make you gain one byte:e=...?e+"!":
instead ofe=...?e+="!":
.
– Olivier Grégoire
Nov 20 at 14:57
add a comment |
up vote
4
down vote
Java-8 118 113 Bytes
n->{String e="";for(int i=0;i<n.length-1;)System.out.print(""==(n[i+1]>n[i++]?e+="!":(e=""))?e:"Excelsior"+e+"n");}
Easy to read :
private static void lee(int num) {
String exclamation = "";
for (int i = 0; i < num.length - 1;) {
exclamation = num[i + 1] > num[i++] ? exclamation += "!" : "";
System.out.print("".equals(exclamation) ? "" : "Excelsior" + exclamation + "n");
}
}
2
Here some golfs to save 10 bytes:n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)
– Kevin Cruijssen
Nov 14 at 10:38
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
2
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)
– Olivier Grégoire
Nov 14 at 14:34
Fixing my issue:++e
instead ofe++
so that there is at least one!
to be printed.
– Olivier Grégoire
Nov 15 at 10:39
1
@KevinCruijssen Small typo in your golf to make you gain one byte:e=...?e+"!":
instead ofe=...?e+="!":
.
– Olivier Grégoire
Nov 20 at 14:57
add a comment |
up vote
4
down vote
up vote
4
down vote
Java-8 118 113 Bytes
n->{String e="";for(int i=0;i<n.length-1;)System.out.print(""==(n[i+1]>n[i++]?e+="!":(e=""))?e:"Excelsior"+e+"n");}
Easy to read :
private static void lee(int num) {
String exclamation = "";
for (int i = 0; i < num.length - 1;) {
exclamation = num[i + 1] > num[i++] ? exclamation += "!" : "";
System.out.print("".equals(exclamation) ? "" : "Excelsior" + exclamation + "n");
}
}
Java-8 118 113 Bytes
n->{String e="";for(int i=0;i<n.length-1;)System.out.print(""==(n[i+1]>n[i++]?e+="!":(e=""))?e:"Excelsior"+e+"n");}
Easy to read :
private static void lee(int num) {
String exclamation = "";
for (int i = 0; i < num.length - 1;) {
exclamation = num[i + 1] > num[i++] ? exclamation += "!" : "";
System.out.print("".equals(exclamation) ? "" : "Excelsior" + exclamation + "n");
}
}
edited Nov 14 at 11:48
answered Nov 14 at 9:57
coder-croc
32738
32738
2
Here some golfs to save 10 bytes:n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)
– Kevin Cruijssen
Nov 14 at 10:38
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
2
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)
– Olivier Grégoire
Nov 14 at 14:34
Fixing my issue:++e
instead ofe++
so that there is at least one!
to be printed.
– Olivier Grégoire
Nov 15 at 10:39
1
@KevinCruijssen Small typo in your golf to make you gain one byte:e=...?e+"!":
instead ofe=...?e+="!":
.
– Olivier Grégoire
Nov 20 at 14:57
add a comment |
2
Here some golfs to save 10 bytes:n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)
– Kevin Cruijssen
Nov 14 at 10:38
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
2
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)
– Olivier Grégoire
Nov 14 at 14:34
Fixing my issue:++e
instead ofe++
so that there is at least one!
to be printed.
– Olivier Grégoire
Nov 15 at 10:39
1
@KevinCruijssen Small typo in your golf to make you gain one byte:e=...?e+"!":
instead ofe=...?e+="!":
.
– Olivier Grégoire
Nov 20 at 14:57
2
2
Here some golfs to save 10 bytes:
n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)– Kevin Cruijssen
Nov 14 at 10:38
Here some golfs to save 10 bytes:
n->{var e="";for(int i=0;i<n.length-1;System.out.print(""==e?e:"Excelsior"+e+"n"))e=n[i++]<n[i]?e+="!":"";}
. Try it online (108 bytes). (Java 10+)– Kevin Cruijssen
Nov 14 at 10:38
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
@KevinCruijssen Thanks!
– coder-croc
Nov 14 at 11:48
2
2
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)– Olivier Grégoire
Nov 14 at 14:34
n->{for(int e=0,i=0;i<n.length-1;)if(n[i++]<n[i])System.out.println("Excelsior"+"!".repeat(e++));else e=0;}
(107 bytes)– Olivier Grégoire
Nov 14 at 14:34
Fixing my issue:
++e
instead of e++
so that there is at least one !
to be printed.– Olivier Grégoire
Nov 15 at 10:39
Fixing my issue:
++e
instead of e++
so that there is at least one !
to be printed.– Olivier Grégoire
Nov 15 at 10:39
1
1
@KevinCruijssen Small typo in your golf to make you gain one byte:
e=...?e+"!":
instead of e=...?e+="!":
.– Olivier Grégoire
Nov 20 at 14:57
@KevinCruijssen Small typo in your golf to make you gain one byte:
e=...?e+"!":
instead of e=...?e+="!":
.– Olivier Grégoire
Nov 20 at 14:57
add a comment |
up vote
4
down vote
R, 86 bytes
Half of this answer is @Giuseppe's. RIP Stan Lee.
function(a)for(i in diff(a))"if"(i>0,cat("Excelsior",rep("!",F<-F+1),"
",sep=""),F<-0)
Try it online!
add a comment |
up vote
4
down vote
R, 86 bytes
Half of this answer is @Giuseppe's. RIP Stan Lee.
function(a)for(i in diff(a))"if"(i>0,cat("Excelsior",rep("!",F<-F+1),"
",sep=""),F<-0)
Try it online!
add a comment |
up vote
4
down vote
up vote
4
down vote
R, 86 bytes
Half of this answer is @Giuseppe's. RIP Stan Lee.
function(a)for(i in diff(a))"if"(i>0,cat("Excelsior",rep("!",F<-F+1),"
",sep=""),F<-0)
Try it online!
R, 86 bytes
Half of this answer is @Giuseppe's. RIP Stan Lee.
function(a)for(i in diff(a))"if"(i>0,cat("Excelsior",rep("!",F<-F+1),"
",sep=""),F<-0)
Try it online!
answered Nov 14 at 21:55
J.Doe
2,031112
2,031112
add a comment |
add a comment |
up vote
4
down vote
05AB1E, 20 19 bytes
ü‹0¡€ƶ˜ε'!×”¸Îsiorÿ
Try it online!
Explanation
ü‹ # pair-wise comparison, less-than
0¡ # split at zeroes
€ƶ # lift each, multiplying by its 1-based index
˜ # flatten
ε # apply to each
'!× # repeat "!" that many times
ÿ # and interpolate it at the end of
”¸Îsior # the compressed word "Excel" followed by the string "sior"
add a comment |
up vote
4
down vote
05AB1E, 20 19 bytes
ü‹0¡€ƶ˜ε'!×”¸Îsiorÿ
Try it online!
Explanation
ü‹ # pair-wise comparison, less-than
0¡ # split at zeroes
€ƶ # lift each, multiplying by its 1-based index
˜ # flatten
ε # apply to each
'!× # repeat "!" that many times
ÿ # and interpolate it at the end of
”¸Îsior # the compressed word "Excel" followed by the string "sior"
add a comment |
up vote
4
down vote
up vote
4
down vote
05AB1E, 20 19 bytes
ü‹0¡€ƶ˜ε'!×”¸Îsiorÿ
Try it online!
Explanation
ü‹ # pair-wise comparison, less-than
0¡ # split at zeroes
€ƶ # lift each, multiplying by its 1-based index
˜ # flatten
ε # apply to each
'!× # repeat "!" that many times
ÿ # and interpolate it at the end of
”¸Îsior # the compressed word "Excel" followed by the string "sior"
05AB1E, 20 19 bytes
ü‹0¡€ƶ˜ε'!×”¸Îsiorÿ
Try it online!
Explanation
ü‹ # pair-wise comparison, less-than
0¡ # split at zeroes
€ƶ # lift each, multiplying by its 1-based index
˜ # flatten
ε # apply to each
'!× # repeat "!" that many times
ÿ # and interpolate it at the end of
”¸Îsior # the compressed word "Excel" followed by the string "sior"
edited Nov 15 at 7:02
answered Nov 14 at 11:26
Emigna
44.8k432136
44.8k432136
add a comment |
add a comment |
up vote
4
down vote
C (gcc/clang), 106 99 97 bytes
f(a,n)int*a;{int r=0,s[n];for(memset(s,33,n);n-->1;)r*=*a<*++a&&printf("Excelsior%.*sn",++r,s);}
Thanks to gastropner for golfing 2 bytes.
Try it online here.
Ungolfed:
f(a, n) // function taking a pointer to the first integer and the length of the array
int *a; { // a is of type pointer to int, n is of type int
int r = 0, // length of the current run
i = 0, // loop variable
s[n]; // buffer for exclamation marks; we will never need more than n-1 of those (we are declaring an array of int, but really we will treat it as an array of char)
for(memset(s, 33, n); // fill the buffer with n exclamation marks (ASCII code 33)
n -- > 1; ) // loop over the array
r *= *a < *(++ a) // if the current element is less than the next:
&& printf("Excelsior%.*sn", // print (on their own line) "Excelsior", followed by ...
++ r, // ... r (incremented) of the ...
s) // ... n exclamation marks in the buffer s
; // else r is reset to 0
}
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
add a comment |
up vote
4
down vote
C (gcc/clang), 106 99 97 bytes
f(a,n)int*a;{int r=0,s[n];for(memset(s,33,n);n-->1;)r*=*a<*++a&&printf("Excelsior%.*sn",++r,s);}
Thanks to gastropner for golfing 2 bytes.
Try it online here.
Ungolfed:
f(a, n) // function taking a pointer to the first integer and the length of the array
int *a; { // a is of type pointer to int, n is of type int
int r = 0, // length of the current run
i = 0, // loop variable
s[n]; // buffer for exclamation marks; we will never need more than n-1 of those (we are declaring an array of int, but really we will treat it as an array of char)
for(memset(s, 33, n); // fill the buffer with n exclamation marks (ASCII code 33)
n -- > 1; ) // loop over the array
r *= *a < *(++ a) // if the current element is less than the next:
&& printf("Excelsior%.*sn", // print (on their own line) "Excelsior", followed by ...
++ r, // ... r (incremented) of the ...
s) // ... n exclamation marks in the buffer s
; // else r is reset to 0
}
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
add a comment |
up vote
4
down vote
up vote
4
down vote
C (gcc/clang), 106 99 97 bytes
f(a,n)int*a;{int r=0,s[n];for(memset(s,33,n);n-->1;)r*=*a<*++a&&printf("Excelsior%.*sn",++r,s);}
Thanks to gastropner for golfing 2 bytes.
Try it online here.
Ungolfed:
f(a, n) // function taking a pointer to the first integer and the length of the array
int *a; { // a is of type pointer to int, n is of type int
int r = 0, // length of the current run
i = 0, // loop variable
s[n]; // buffer for exclamation marks; we will never need more than n-1 of those (we are declaring an array of int, but really we will treat it as an array of char)
for(memset(s, 33, n); // fill the buffer with n exclamation marks (ASCII code 33)
n -- > 1; ) // loop over the array
r *= *a < *(++ a) // if the current element is less than the next:
&& printf("Excelsior%.*sn", // print (on their own line) "Excelsior", followed by ...
++ r, // ... r (incremented) of the ...
s) // ... n exclamation marks in the buffer s
; // else r is reset to 0
}
C (gcc/clang), 106 99 97 bytes
f(a,n)int*a;{int r=0,s[n];for(memset(s,33,n);n-->1;)r*=*a<*++a&&printf("Excelsior%.*sn",++r,s);}
Thanks to gastropner for golfing 2 bytes.
Try it online here.
Ungolfed:
f(a, n) // function taking a pointer to the first integer and the length of the array
int *a; { // a is of type pointer to int, n is of type int
int r = 0, // length of the current run
i = 0, // loop variable
s[n]; // buffer for exclamation marks; we will never need more than n-1 of those (we are declaring an array of int, but really we will treat it as an array of char)
for(memset(s, 33, n); // fill the buffer with n exclamation marks (ASCII code 33)
n -- > 1; ) // loop over the array
r *= *a < *(++ a) // if the current element is less than the next:
&& printf("Excelsior%.*sn", // print (on their own line) "Excelsior", followed by ...
++ r, // ... r (incremented) of the ...
s) // ... n exclamation marks in the buffer s
; // else r is reset to 0
}
edited Nov 16 at 15:53
answered Nov 14 at 13:06
O.O.Balance
1,2401318
1,2401318
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
add a comment |
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
I started making a solution, but ended up so close to yours that posting mine as a separate answer felt a bit silly. Still, the few differences there are can save you a few bytes.
– gastropner
Nov 15 at 21:27
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
@gastropner Thanks for sharing your version. I have incorporated your improvements and golfed it further to 99 bytes. If only we didn't need to handle the empty array – otherwise it would be 97 bytes, using your style of loop.
– O.O.Balance
Nov 16 at 14:08
add a comment |
up vote
4
down vote
Japt -R
, 25 22 bytes
ò¨ ËÅ£`ExlÐâ`ú'!Y+A
c
Try it
3 bytes saved thanks to Kamil
ò¨ :Partition at items that are greater than or equal to the previous item
Ë :Map
Å : Slice off the first element
£ : Map each element at 0-based index Y
`ExlÐâ` : Compressed string "Excelsior"
ú'! : Right pad with exclamation marks
Y+A : To length Y+10
c :Flatten
:Implicitly join with newlines & output
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
The-R
flag isn't actually necessary, the challenge says you can output an array of strings.
– Kamil Drakari
Nov 14 at 15:33
Nice one, thanks, @KamilDrakari. I tried a solution usingslice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.
– Shaggy
Nov 16 at 16:29
add a comment |
up vote
4
down vote
Japt -R
, 25 22 bytes
ò¨ ËÅ£`ExlÐâ`ú'!Y+A
c
Try it
3 bytes saved thanks to Kamil
ò¨ :Partition at items that are greater than or equal to the previous item
Ë :Map
Å : Slice off the first element
£ : Map each element at 0-based index Y
`ExlÐâ` : Compressed string "Excelsior"
ú'! : Right pad with exclamation marks
Y+A : To length Y+10
c :Flatten
:Implicitly join with newlines & output
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
The-R
flag isn't actually necessary, the challenge says you can output an array of strings.
– Kamil Drakari
Nov 14 at 15:33
Nice one, thanks, @KamilDrakari. I tried a solution usingslice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.
– Shaggy
Nov 16 at 16:29
add a comment |
up vote
4
down vote
up vote
4
down vote
Japt -R
, 25 22 bytes
ò¨ ËÅ£`ExlÐâ`ú'!Y+A
c
Try it
3 bytes saved thanks to Kamil
ò¨ :Partition at items that are greater than or equal to the previous item
Ë :Map
Å : Slice off the first element
£ : Map each element at 0-based index Y
`ExlÐâ` : Compressed string "Excelsior"
ú'! : Right pad with exclamation marks
Y+A : To length Y+10
c :Flatten
:Implicitly join with newlines & output
Japt -R
, 25 22 bytes
ò¨ ËÅ£`ExlÐâ`ú'!Y+A
c
Try it
3 bytes saved thanks to Kamil
ò¨ :Partition at items that are greater than or equal to the previous item
Ë :Map
Å : Slice off the first element
£ : Map each element at 0-based index Y
`ExlÐâ` : Compressed string "Excelsior"
ú'! : Right pad with exclamation marks
Y+A : To length Y+10
c :Flatten
:Implicitly join with newlines & output
edited Nov 16 at 16:29
answered Nov 14 at 10:59
Shaggy
18.2k21663
18.2k21663
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
The-R
flag isn't actually necessary, the challenge says you can output an array of strings.
– Kamil Drakari
Nov 14 at 15:33
Nice one, thanks, @KamilDrakari. I tried a solution usingslice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.
– Shaggy
Nov 16 at 16:29
add a comment |
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
The-R
flag isn't actually necessary, the challenge says you can output an array of strings.
– Kamil Drakari
Nov 14 at 15:33
Nice one, thanks, @KamilDrakari. I tried a solution usingslice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.
– Shaggy
Nov 16 at 16:29
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
Another 25 bytes
– Luis felipe De jesus Munoz
Nov 14 at 12:31
The
-R
flag isn't actually necessary, the challenge says you can output an array of strings.– Kamil Drakari
Nov 14 at 15:33
The
-R
flag isn't actually necessary, the challenge says you can output an array of strings.– Kamil Drakari
Nov 14 at 15:33
Nice one, thanks, @KamilDrakari. I tried a solution using
slice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.– Shaggy
Nov 16 at 16:29
Nice one, thanks, @KamilDrakari. I tried a solution using
slice
on my first pass but dismissed it when it worked out too long. Coming back to it now, with your prompting, I guess I should have stuck with it 'cause I got it down to 22 too.– Shaggy
Nov 16 at 16:29
add a comment |
up vote
3
down vote
Common Lisp, 111 bytes
(setq i 0)(loop for(a b)on(read)do(incf i(if(and b(> b a))1(- i)))(format(> i 0)"Excelsior~v@{~a~:*~}~%"i #!))
Try it online!
add a comment |
up vote
3
down vote
Common Lisp, 111 bytes
(setq i 0)(loop for(a b)on(read)do(incf i(if(and b(> b a))1(- i)))(format(> i 0)"Excelsior~v@{~a~:*~}~%"i #!))
Try it online!
add a comment |
up vote
3
down vote
up vote
3
down vote
Common Lisp, 111 bytes
(setq i 0)(loop for(a b)on(read)do(incf i(if(and b(> b a))1(- i)))(format(> i 0)"Excelsior~v@{~a~:*~}~%"i #!))
Try it online!
Common Lisp, 111 bytes
(setq i 0)(loop for(a b)on(read)do(incf i(if(and b(> b a))1(- i)))(format(> i 0)"Excelsior~v@{~a~:*~}~%"i #!))
Try it online!
answered Nov 14 at 14:31
Renzo
1,600516
1,600516
add a comment |
add a comment |
up vote
3
down vote
Java 8, 106 bytes
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]<n[i]?"Excelsior"+(s+="!")+"n":(s="")+s;return z;}
Try it online!
(those reassignments of s
...yikes)
You can golf two more bytes by replacing(s="")+s
=>(s="")
– O.O.Balance
Nov 15 at 10:38
1
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move thes=""
to spare bytes.
– Olivier Grégoire
Nov 15 at 10:41
add a comment |
up vote
3
down vote
Java 8, 106 bytes
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]<n[i]?"Excelsior"+(s+="!")+"n":(s="")+s;return z;}
Try it online!
(those reassignments of s
...yikes)
You can golf two more bytes by replacing(s="")+s
=>(s="")
– O.O.Balance
Nov 15 at 10:38
1
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move thes=""
to spare bytes.
– Olivier Grégoire
Nov 15 at 10:41
add a comment |
up vote
3
down vote
up vote
3
down vote
Java 8, 106 bytes
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]<n[i]?"Excelsior"+(s+="!")+"n":(s="")+s;return z;}
Try it online!
(those reassignments of s
...yikes)
Java 8, 106 bytes
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]<n[i]?"Excelsior"+(s+="!")+"n":(s="")+s;return z;}
Try it online!
(those reassignments of s
...yikes)
answered Nov 14 at 17:41
NotBaal
1216
1216
You can golf two more bytes by replacing(s="")+s
=>(s="")
– O.O.Balance
Nov 15 at 10:38
1
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move thes=""
to spare bytes.
– Olivier Grégoire
Nov 15 at 10:41
add a comment |
You can golf two more bytes by replacing(s="")+s
=>(s="")
– O.O.Balance
Nov 15 at 10:38
1
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move thes=""
to spare bytes.
– Olivier Grégoire
Nov 15 at 10:41
You can golf two more bytes by replacing
(s="")+s
=> (s="")
– O.O.Balance
Nov 15 at 10:38
You can golf two more bytes by replacing
(s="")+s
=> (s="")
– O.O.Balance
Nov 15 at 10:38
1
1
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move the s=""
to spare bytes.– Olivier Grégoire
Nov 15 at 10:41
n->{String s="",z=s;for(int i=0;i<n.length-1;)z+=n[i++]>=n[i]?s="":"Excelsior"+(s+="!")+"n";return z;}
(103 bytes) Move the s=""
to spare bytes.– Olivier Grégoire
Nov 15 at 10:41
add a comment |
up vote
3
down vote
Stax, 17 bytes
Θx7├╖&σ '@7g┼┘Ñ«═
Run and debug it
add a comment |
up vote
3
down vote
Stax, 17 bytes
Θx7├╖&σ '@7g┼┘Ñ«═
Run and debug it
add a comment |
up vote
3
down vote
up vote
3
down vote
Stax, 17 bytes
Θx7├╖&σ '@7g┼┘Ñ«═
Run and debug it
Stax, 17 bytes
Θx7├╖&σ '@7g┼┘Ñ«═
Run and debug it
answered Nov 14 at 20:31
recursive
4,9941221
4,9941221
add a comment |
add a comment |
up vote
3
down vote
R, 111 bytes
function(a,r=rle(sign(diff(a))),v=r$l[r$v>0])write(paste0(rep("Excelsior",sum(v)),strrep("!",sequence(v))),1,1)
Try it online!
A far better R tribute can be found here -- I was too fixated on sequence
and rle
.
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
2
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
add a comment |
up vote
3
down vote
R, 111 bytes
function(a,r=rle(sign(diff(a))),v=r$l[r$v>0])write(paste0(rep("Excelsior",sum(v)),strrep("!",sequence(v))),1,1)
Try it online!
A far better R tribute can be found here -- I was too fixated on sequence
and rle
.
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
2
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
add a comment |
up vote
3
down vote
up vote
3
down vote
R, 111 bytes
function(a,r=rle(sign(diff(a))),v=r$l[r$v>0])write(paste0(rep("Excelsior",sum(v)),strrep("!",sequence(v))),1,1)
Try it online!
A far better R tribute can be found here -- I was too fixated on sequence
and rle
.
R, 111 bytes
function(a,r=rle(sign(diff(a))),v=r$l[r$v>0])write(paste0(rep("Excelsior",sum(v)),strrep("!",sequence(v))),1,1)
Try it online!
A far better R tribute can be found here -- I was too fixated on sequence
and rle
.
edited Nov 14 at 21:56
answered Nov 14 at 14:42
Giuseppe
16.1k31052
16.1k31052
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
2
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
add a comment |
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
2
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
This doesn't give some blank lines, but 86 bytes?
– J.Doe
Nov 14 at 19:26
2
2
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
@J.Doe dang, that's way better. I'd post that myself if I were you.
– Giuseppe
Nov 14 at 20:48
add a comment |
up vote
3
down vote
Jelly, 16 bytes
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ
A monadic Link yielding a list of lists of characters.
Try it online! (footer joins with newlines)
How?
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ - Link: list of integers e.g. [1,1,4,2,1,1,3,4]
Ɲ - for each pair of integers: [1,1] [1,4] [4,2] [2,1] [1,1] [1,3] [3,4]
< - less than? [ 0, 1, 0, 0, 0, 1, 1]
ṣ0 - split at zeros [, [1], , , [1, 1]]
Ä - cumulative sums [, [1], , , [1, 2]]
Ẏ - tighten [1,1,2]
”! - literal '!' character '!'
ẋ - repeat (vectorises) [['!'],['!'],['!','!']]
“Ø6ḥ» - dictionary lookup ['E','x','c','e','l','s','i','o','r']
Ɱ - map with:
; - concatenate [['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!','!']]
add a comment |
up vote
3
down vote
Jelly, 16 bytes
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ
A monadic Link yielding a list of lists of characters.
Try it online! (footer joins with newlines)
How?
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ - Link: list of integers e.g. [1,1,4,2,1,1,3,4]
Ɲ - for each pair of integers: [1,1] [1,4] [4,2] [2,1] [1,1] [1,3] [3,4]
< - less than? [ 0, 1, 0, 0, 0, 1, 1]
ṣ0 - split at zeros [, [1], , , [1, 1]]
Ä - cumulative sums [, [1], , , [1, 2]]
Ẏ - tighten [1,1,2]
”! - literal '!' character '!'
ẋ - repeat (vectorises) [['!'],['!'],['!','!']]
“Ø6ḥ» - dictionary lookup ['E','x','c','e','l','s','i','o','r']
Ɱ - map with:
; - concatenate [['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!','!']]
add a comment |
up vote
3
down vote
up vote
3
down vote
Jelly, 16 bytes
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ
A monadic Link yielding a list of lists of characters.
Try it online! (footer joins with newlines)
How?
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ - Link: list of integers e.g. [1,1,4,2,1,1,3,4]
Ɲ - for each pair of integers: [1,1] [1,4] [4,2] [2,1] [1,1] [1,3] [3,4]
< - less than? [ 0, 1, 0, 0, 0, 1, 1]
ṣ0 - split at zeros [, [1], , , [1, 1]]
Ä - cumulative sums [, [1], , , [1, 2]]
Ẏ - tighten [1,1,2]
”! - literal '!' character '!'
ẋ - repeat (vectorises) [['!'],['!'],['!','!']]
“Ø6ḥ» - dictionary lookup ['E','x','c','e','l','s','i','o','r']
Ɱ - map with:
; - concatenate [['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!','!']]
Jelly, 16 bytes
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ
A monadic Link yielding a list of lists of characters.
Try it online! (footer joins with newlines)
How?
<Ɲṣ0ÄẎ”!ẋ“Ø6ḥ»;Ɱ - Link: list of integers e.g. [1,1,4,2,1,1,3,4]
Ɲ - for each pair of integers: [1,1] [1,4] [4,2] [2,1] [1,1] [1,3] [3,4]
< - less than? [ 0, 1, 0, 0, 0, 1, 1]
ṣ0 - split at zeros [, [1], , , [1, 1]]
Ä - cumulative sums [, [1], , , [1, 2]]
Ẏ - tighten [1,1,2]
”! - literal '!' character '!'
ẋ - repeat (vectorises) [['!'],['!'],['!','!']]
“Ø6ḥ» - dictionary lookup ['E','x','c','e','l','s','i','o','r']
Ɱ - map with:
; - concatenate [['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!'],['E','x','c','e','l','s','i','o','r','!','!']]
answered Nov 14 at 22:13
Jonathan Allan
50.2k534165
50.2k534165
add a comment |
add a comment |
up vote
3
down vote
Perl 5 -n
, 41 bytes
$_>$l&&$l?say$c.='!':($c=Excelsior);$l=$_
Try it online!
Takes its input on separate lines.
add a comment |
up vote
3
down vote
Perl 5 -n
, 41 bytes
$_>$l&&$l?say$c.='!':($c=Excelsior);$l=$_
Try it online!
Takes its input on separate lines.
add a comment |
up vote
3
down vote
up vote
3
down vote
Perl 5 -n
, 41 bytes
$_>$l&&$l?say$c.='!':($c=Excelsior);$l=$_
Try it online!
Takes its input on separate lines.
Perl 5 -n
, 41 bytes
$_>$l&&$l?say$c.='!':($c=Excelsior);$l=$_
Try it online!
Takes its input on separate lines.
answered Nov 14 at 22:53
Xcali
4,990520
4,990520
add a comment |
add a comment |
up vote
3
down vote
Japt, 22 bytes
ò¨ ®£`ExlÐâ`+'!pYÃÅÃc
Try it online!
Explanation, with simplified example:
ò¨ :Split whenever the sequence does not increase
e.g. [2,1,1,3] -> [[2],[1],[1,3]]
® Ã :For each sub-array:
£ Ã : For each item in that sub-array:
`ExlÐâ` : Compressed "Excelsior"
+ : Concat with
'!pY : a number of "!" equal to the index
e.g. [1,3] -> ["Excelsior","Excelsior!"]
Å : Remove the first item of each sub-array
e.g. [[Excelsior],[Excelsior],[Excelsior,Excelsior!]]->[,,[Excelsior!]]
c :Flatten
e.g. [,,[Excelsior!]] -> [Excelsior!]
add a comment |
up vote
3
down vote
Japt, 22 bytes
ò¨ ®£`ExlÐâ`+'!pYÃÅÃc
Try it online!
Explanation, with simplified example:
ò¨ :Split whenever the sequence does not increase
e.g. [2,1,1,3] -> [[2],[1],[1,3]]
® Ã :For each sub-array:
£ Ã : For each item in that sub-array:
`ExlÐâ` : Compressed "Excelsior"
+ : Concat with
'!pY : a number of "!" equal to the index
e.g. [1,3] -> ["Excelsior","Excelsior!"]
Å : Remove the first item of each sub-array
e.g. [[Excelsior],[Excelsior],[Excelsior,Excelsior!]]->[,,[Excelsior!]]
c :Flatten
e.g. [,,[Excelsior!]] -> [Excelsior!]
add a comment |
up vote
3
down vote
up vote
3
down vote
Japt, 22 bytes
ò¨ ®£`ExlÐâ`+'!pYÃÅÃc
Try it online!
Explanation, with simplified example:
ò¨ :Split whenever the sequence does not increase
e.g. [2,1,1,3] -> [[2],[1],[1,3]]
® Ã :For each sub-array:
£ Ã : For each item in that sub-array:
`ExlÐâ` : Compressed "Excelsior"
+ : Concat with
'!pY : a number of "!" equal to the index
e.g. [1,3] -> ["Excelsior","Excelsior!"]
Å : Remove the first item of each sub-array
e.g. [[Excelsior],[Excelsior],[Excelsior,Excelsior!]]->[,,[Excelsior!]]
c :Flatten
e.g. [,,[Excelsior!]] -> [Excelsior!]
Japt, 22 bytes
ò¨ ®£`ExlÐâ`+'!pYÃÅÃc
Try it online!
Explanation, with simplified example:
ò¨ :Split whenever the sequence does not increase
e.g. [2,1,1,3] -> [[2],[1],[1,3]]
® Ã :For each sub-array:
£ Ã : For each item in that sub-array:
`ExlÐâ` : Compressed "Excelsior"
+ : Concat with
'!pY : a number of "!" equal to the index
e.g. [1,3] -> ["Excelsior","Excelsior!"]
Å : Remove the first item of each sub-array
e.g. [[Excelsior],[Excelsior],[Excelsior,Excelsior!]]->[,,[Excelsior!]]
c :Flatten
e.g. [,,[Excelsior!]] -> [Excelsior!]
answered Nov 16 at 2:23
Kamil Drakari
2,591416
2,591416
add a comment |
add a comment |
up vote
3
down vote
Powershell, 69 bytes
$args|%{if($o-ne$e-and$_-gt$o){'Excelsior'+'!'*++$c}else{$c=0}$o=$_}
Less golfed test script:
$f = {
$args|%{
if($old-ne$empty-and$_-gt$old){
'Excelsior'+'!'*++$c
}else{
$c=0
}
$old=$_
}
}
@(
,( (3,2,1,0,5), 'Excelsior!') # Excelsior because 5 > 0
,( (1,2,3,4,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!!', # Excelsior because 3 > 2 (run length: 2)
'Excelsior!!!', # Excelsior because 4 > 3 (run length: 3)
'Excelsior!!!!') # Excelsior because 5 > 4 (run length: 4)
,( $null, '') # <Nothing>
,( (42), '') # <Nothing>
,( (1,2,1,3,4,1,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!', # Excelsior because 3 > 1
'Excelsior!!', # Excelsior because 4 > 3 (run length: 2)
'Excelsior!') # Excelsior because 5 > 1
,( (3,3,3,3,4,3), 'Excelsior!') # Excelsior because 4 > 3
) | % {
$a,$expected = $_
$result = &$f @a
"$result"-eq"$expected"
$result
}
Output:
True
Excelsior!
True
Excelsior!
Excelsior!!
Excelsior!!!
Excelsior!!!!
True
True
True
Excelsior!
Excelsior!
Excelsior!!
Excelsior!
True
Excelsior!
1
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
add a comment |
up vote
3
down vote
Powershell, 69 bytes
$args|%{if($o-ne$e-and$_-gt$o){'Excelsior'+'!'*++$c}else{$c=0}$o=$_}
Less golfed test script:
$f = {
$args|%{
if($old-ne$empty-and$_-gt$old){
'Excelsior'+'!'*++$c
}else{
$c=0
}
$old=$_
}
}
@(
,( (3,2,1,0,5), 'Excelsior!') # Excelsior because 5 > 0
,( (1,2,3,4,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!!', # Excelsior because 3 > 2 (run length: 2)
'Excelsior!!!', # Excelsior because 4 > 3 (run length: 3)
'Excelsior!!!!') # Excelsior because 5 > 4 (run length: 4)
,( $null, '') # <Nothing>
,( (42), '') # <Nothing>
,( (1,2,1,3,4,1,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!', # Excelsior because 3 > 1
'Excelsior!!', # Excelsior because 4 > 3 (run length: 2)
'Excelsior!') # Excelsior because 5 > 1
,( (3,3,3,3,4,3), 'Excelsior!') # Excelsior because 4 > 3
) | % {
$a,$expected = $_
$result = &$f @a
"$result"-eq"$expected"
$result
}
Output:
True
Excelsior!
True
Excelsior!
Excelsior!!
Excelsior!!!
Excelsior!!!!
True
True
True
Excelsior!
Excelsior!
Excelsior!!
Excelsior!
True
Excelsior!
1
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
add a comment |
up vote
3
down vote
up vote
3
down vote
Powershell, 69 bytes
$args|%{if($o-ne$e-and$_-gt$o){'Excelsior'+'!'*++$c}else{$c=0}$o=$_}
Less golfed test script:
$f = {
$args|%{
if($old-ne$empty-and$_-gt$old){
'Excelsior'+'!'*++$c
}else{
$c=0
}
$old=$_
}
}
@(
,( (3,2,1,0,5), 'Excelsior!') # Excelsior because 5 > 0
,( (1,2,3,4,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!!', # Excelsior because 3 > 2 (run length: 2)
'Excelsior!!!', # Excelsior because 4 > 3 (run length: 3)
'Excelsior!!!!') # Excelsior because 5 > 4 (run length: 4)
,( $null, '') # <Nothing>
,( (42), '') # <Nothing>
,( (1,2,1,3,4,1,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!', # Excelsior because 3 > 1
'Excelsior!!', # Excelsior because 4 > 3 (run length: 2)
'Excelsior!') # Excelsior because 5 > 1
,( (3,3,3,3,4,3), 'Excelsior!') # Excelsior because 4 > 3
) | % {
$a,$expected = $_
$result = &$f @a
"$result"-eq"$expected"
$result
}
Output:
True
Excelsior!
True
Excelsior!
Excelsior!!
Excelsior!!!
Excelsior!!!!
True
True
True
Excelsior!
Excelsior!
Excelsior!!
Excelsior!
True
Excelsior!
Powershell, 69 bytes
$args|%{if($o-ne$e-and$_-gt$o){'Excelsior'+'!'*++$c}else{$c=0}$o=$_}
Less golfed test script:
$f = {
$args|%{
if($old-ne$empty-and$_-gt$old){
'Excelsior'+'!'*++$c
}else{
$c=0
}
$old=$_
}
}
@(
,( (3,2,1,0,5), 'Excelsior!') # Excelsior because 5 > 0
,( (1,2,3,4,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!!', # Excelsior because 3 > 2 (run length: 2)
'Excelsior!!!', # Excelsior because 4 > 3 (run length: 3)
'Excelsior!!!!') # Excelsior because 5 > 4 (run length: 4)
,( $null, '') # <Nothing>
,( (42), '') # <Nothing>
,( (1,2,1,3,4,1,5), 'Excelsior!', # Excelsior because 2 > 1
'Excelsior!', # Excelsior because 3 > 1
'Excelsior!!', # Excelsior because 4 > 3 (run length: 2)
'Excelsior!') # Excelsior because 5 > 1
,( (3,3,3,3,4,3), 'Excelsior!') # Excelsior because 4 > 3
) | % {
$a,$expected = $_
$result = &$f @a
"$result"-eq"$expected"
$result
}
Output:
True
Excelsior!
True
Excelsior!
Excelsior!!
Excelsior!!!
Excelsior!!!!
True
True
True
Excelsior!
Excelsior!
Excelsior!!
Excelsior!
True
Excelsior!
answered Nov 17 at 9:50
mazzy
1,827313
1,827313
1
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
add a comment |
1
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
1
1
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
There it is, I was trying to get a lag pointer to work but couldn't think of how.
– Veskah
Nov 18 at 0:38
add a comment |
up vote
3
down vote
PowerShell, 87 85 bytes
param($n)for(;++$i-lt$n.count){if($n[$i]-gt$n[$i-1]){"Excelsior"+"!"*++$c}else{$c=0}}
Try it online!
There's probably a restructuring hiding in there, most likely in the if-else, but overall pretty alright. Uses the ol' "Un-instantiated variable defaults to 0" trick for both making the index and the !
.
add a comment |
up vote
3
down vote
PowerShell, 87 85 bytes
param($n)for(;++$i-lt$n.count){if($n[$i]-gt$n[$i-1]){"Excelsior"+"!"*++$c}else{$c=0}}
Try it online!
There's probably a restructuring hiding in there, most likely in the if-else, but overall pretty alright. Uses the ol' "Un-instantiated variable defaults to 0" trick for both making the index and the !
.
add a comment |
up vote
3
down vote
up vote
3
down vote
PowerShell, 87 85 bytes
param($n)for(;++$i-lt$n.count){if($n[$i]-gt$n[$i-1]){"Excelsior"+"!"*++$c}else{$c=0}}
Try it online!
There's probably a restructuring hiding in there, most likely in the if-else, but overall pretty alright. Uses the ol' "Un-instantiated variable defaults to 0" trick for both making the index and the !
.
PowerShell, 87 85 bytes
param($n)for(;++$i-lt$n.count){if($n[$i]-gt$n[$i-1]){"Excelsior"+"!"*++$c}else{$c=0}}
Try it online!
There's probably a restructuring hiding in there, most likely in the if-else, but overall pretty alright. Uses the ol' "Un-instantiated variable defaults to 0" trick for both making the index and the !
.
edited Nov 18 at 0:39
answered Nov 17 at 4:02
Veskah
73614
73614
add a comment |
add a comment |
up vote
2
down vote
Retina, 55 bytes
d+
*
L$rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Excelsior$#1*!
Try it online! Link includes test cases. Explanation:
d+
*
Convert to unary.
rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Process overlapping matches from right to left (although the matches are then listed from left to right). This means that we can match every number in a run, and the match extends to the start of the run. Each match is further constrained that each additional matched number must be less than the previously matched additional number, or the first number if no additional numbers have been matched yet.
L$...
Excelsior$#1*!
For each match, output Excelsior
with the number of additional numbers in the run as desired.
add a comment |
up vote
2
down vote
Retina, 55 bytes
d+
*
L$rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Excelsior$#1*!
Try it online! Link includes test cases. Explanation:
d+
*
Convert to unary.
rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Process overlapping matches from right to left (although the matches are then listed from left to right). This means that we can match every number in a run, and the match extends to the start of the run. Each match is further constrained that each additional matched number must be less than the previously matched additional number, or the first number if no additional numbers have been matched yet.
L$...
Excelsior$#1*!
For each match, output Excelsior
with the number of additional numbers in the run as desired.
add a comment |
up vote
2
down vote
up vote
2
down vote
Retina, 55 bytes
d+
*
L$rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Excelsior$#1*!
Try it online! Link includes test cases. Explanation:
d+
*
Convert to unary.
rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Process overlapping matches from right to left (although the matches are then listed from left to right). This means that we can match every number in a run, and the match extends to the start of the run. Each match is further constrained that each additional matched number must be less than the previously matched additional number, or the first number if no additional numbers have been matched yet.
L$...
Excelsior$#1*!
For each match, output Excelsior
with the number of additional numbers in the run as desired.
Retina, 55 bytes
d+
*
L$rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Excelsior$#1*!
Try it online! Link includes test cases. Explanation:
d+
*
Convert to unary.
rv`(_*,(?<!(?(1)1|2,)))+(_+)b
Process overlapping matches from right to left (although the matches are then listed from left to right). This means that we can match every number in a run, and the match extends to the start of the run. Each match is further constrained that each additional matched number must be less than the previously matched additional number, or the first number if no additional numbers have been matched yet.
L$...
Excelsior$#1*!
For each match, output Excelsior
with the number of additional numbers in the run as desired.
answered Nov 14 at 10:35
Neil
78.2k744175
78.2k744175
add a comment |
add a comment |
up vote
2
down vote
Pyth, 32 bytes
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0
Try it online here, or verify all the test cases at once here.
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0 Implicit: Q=eval(input())
.+Q Get forward difference between consecutive elements of Q
.u 0 Reduce the above, returning all steps, with current value N starting at 0, next element as Y, using:
hN N+1
* Multiplied by
<0Y 1 if 0<Y, 0 otherwise
fT Filter to remove 0s
*L! Repeat "!" each element number of times
+L"Excelsior" Prepend "Excelsior" to each
j Join on newlines, implicit print
add a comment |
up vote
2
down vote
Pyth, 32 bytes
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0
Try it online here, or verify all the test cases at once here.
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0 Implicit: Q=eval(input())
.+Q Get forward difference between consecutive elements of Q
.u 0 Reduce the above, returning all steps, with current value N starting at 0, next element as Y, using:
hN N+1
* Multiplied by
<0Y 1 if 0<Y, 0 otherwise
fT Filter to remove 0s
*L! Repeat "!" each element number of times
+L"Excelsior" Prepend "Excelsior" to each
j Join on newlines, implicit print
add a comment |
up vote
2
down vote
up vote
2
down vote
Pyth, 32 bytes
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0
Try it online here, or verify all the test cases at once here.
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0 Implicit: Q=eval(input())
.+Q Get forward difference between consecutive elements of Q
.u 0 Reduce the above, returning all steps, with current value N starting at 0, next element as Y, using:
hN N+1
* Multiplied by
<0Y 1 if 0<Y, 0 otherwise
fT Filter to remove 0s
*L! Repeat "!" each element number of times
+L"Excelsior" Prepend "Excelsior" to each
j Join on newlines, implicit print
Pyth, 32 bytes
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0
Try it online here, or verify all the test cases at once here.
j+L"Excelsior"*L!fT.u*hN<0Y.+Q0 Implicit: Q=eval(input())
.+Q Get forward difference between consecutive elements of Q
.u 0 Reduce the above, returning all steps, with current value N starting at 0, next element as Y, using:
hN N+1
* Multiplied by
<0Y 1 if 0<Y, 0 otherwise
fT Filter to remove 0s
*L! Repeat "!" each element number of times
+L"Excelsior" Prepend "Excelsior" to each
j Join on newlines, implicit print
answered Nov 14 at 10:45
Sok
3,379722
3,379722
add a comment |
add a comment |
up vote
2
down vote
Jelly, 18 bytes
<Ɲ‘×¥ḟ0”!ẋ“Ø6ḥ»;Ɱ
Try it online!
Output prettified over TIO.
add a comment |
up vote
2
down vote
Jelly, 18 bytes
<Ɲ‘×¥ḟ0”!ẋ“Ø6ḥ»;Ɱ
Try it online!
Output prettified over TIO.
add a comment |
up vote
2
down vote
up vote
2
down vote
Jelly, 18 bytes
<Ɲ‘×¥ḟ0”!ẋ“Ø6ḥ»;Ɱ
Try it online!
Output prettified over TIO.
Jelly, 18 bytes
<Ɲ‘×¥ḟ0”!ẋ“Ø6ḥ»;Ɱ
Try it online!
Output prettified over TIO.
edited Nov 14 at 11:42
answered Nov 14 at 11:27
Erik the Outgolfer
30.7k429102
30.7k429102
add a comment |
add a comment |
up vote
2
down vote
Lua, 88 87 83 82 96 95 113 bytes
Thanks @Kevin Cruijssen for update adhering to spirit of original question.
s=io.read()n=9 e="Excelsior!"f=e
for c in s.gmatch(s,"%S+")do if n<c+0then print(e)e=e..'!'else e=f end n=c+0 end
Try it online!
1
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
1
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
2
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
add a comment |
up vote
2
down vote
Lua, 88 87 83 82 96 95 113 bytes
Thanks @Kevin Cruijssen for update adhering to spirit of original question.
s=io.read()n=9 e="Excelsior!"f=e
for c in s.gmatch(s,"%S+")do if n<c+0then print(e)e=e..'!'else e=f end n=c+0 end
Try it online!
1
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
1
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
2
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
add a comment |
up vote
2
down vote
up vote
2
down vote
Lua, 88 87 83 82 96 95 113 bytes
Thanks @Kevin Cruijssen for update adhering to spirit of original question.
s=io.read()n=9 e="Excelsior!"f=e
for c in s.gmatch(s,"%S+")do if n<c+0then print(e)e=e..'!'else e=f end n=c+0 end
Try it online!
Lua, 88 87 83 82 96 95 113 bytes
Thanks @Kevin Cruijssen for update adhering to spirit of original question.
s=io.read()n=9 e="Excelsior!"f=e
for c in s.gmatch(s,"%S+")do if n<c+0then print(e)e=e..'!'else e=f end n=c+0 end
Try it online!
edited Nov 14 at 16:15
Charlie
7,2962388
7,2962388
answered Nov 14 at 9:29
ouflak
171310
171310
1
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
1
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
2
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
add a comment |
1
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
1
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
2
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
1
1
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
Sorry but you need to print the exclamation mark according to the rules (one exclamation mark per length of the current run of increasingly greater numbers).
– Charlie
Nov 14 at 9:49
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
No problem. Think I've done as much as I can do here unless someone else sees something...
– ouflak
Nov 14 at 9:56
1
1
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
I don't know Lua too well, but here is a fix for your code so it runs all test cases correctly Currently you just print an "!" more every time a number is higher than the previous, but you don't reset it back to 1 when that isn't the case. More can probably be golfed, but since I've never golfed in Lua I focused on fixing it with only minor golfs. PS: Not sure if assuming the input are always single digits is correct..
– Kevin Cruijssen
Nov 14 at 13:43
2
2
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
Since @Charlie mentioned in a comment below the challenge description that it should be possible to take multi-digits numbers as input, here a possible fix by taking a space-delimited input and split on it.
– Kevin Cruijssen
Nov 14 at 14:01
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
I decided that Kevin Cruijssen modifications are more inline with the OP's expectation. Thanks!
– ouflak
Nov 14 at 15:02
add a comment |
up vote
2
down vote
C++ 14 (g++), 123 118 bytes
(auto a){for(int n=0,i=0;++i<a.size();)a[i]>a[i-1]?puts(&("Excelsior"+std::string(++n,33))[0]):n=0;}
Fortunately std::string
has a constructor that repeats a char
. Try it online here.
Thanks to gastropner for saving 5 bytes.
Ungolfed:
(auto a) { // void lambda taking a std::array of integer
for(int n = 0, // length of the current run
i = 0; // loop variable
++ i < a.size(); ) // start with the second element and loop to the last
a[i] > a[i - 1] // if the current element is greater than the previous ...
? puts( // ... print a new line:
&("Excelsior" + // "Excelsior, followed by ...
std::string(++ n, 33)) // ... the appropriate number of exclamation marks (33 is ASCII code for '!'); increment the run length
[0]) // puts() takes a C string
: n = 0; // else reset run length
}
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
add a comment |
up vote
2
down vote
C++ 14 (g++), 123 118 bytes
(auto a){for(int n=0,i=0;++i<a.size();)a[i]>a[i-1]?puts(&("Excelsior"+std::string(++n,33))[0]):n=0;}
Fortunately std::string
has a constructor that repeats a char
. Try it online here.
Thanks to gastropner for saving 5 bytes.
Ungolfed:
(auto a) { // void lambda taking a std::array of integer
for(int n = 0, // length of the current run
i = 0; // loop variable
++ i < a.size(); ) // start with the second element and loop to the last
a[i] > a[i - 1] // if the current element is greater than the previous ...
? puts( // ... print a new line:
&("Excelsior" + // "Excelsior, followed by ...
std::string(++ n, 33)) // ... the appropriate number of exclamation marks (33 is ASCII code for '!'); increment the run length
[0]) // puts() takes a C string
: n = 0; // else reset run length
}
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
add a comment |
up vote
2
down vote
up vote
2
down vote
C++ 14 (g++), 123 118 bytes
(auto a){for(int n=0,i=0;++i<a.size();)a[i]>a[i-1]?puts(&("Excelsior"+std::string(++n,33))[0]):n=0;}
Fortunately std::string
has a constructor that repeats a char
. Try it online here.
Thanks to gastropner for saving 5 bytes.
Ungolfed:
(auto a) { // void lambda taking a std::array of integer
for(int n = 0, // length of the current run
i = 0; // loop variable
++ i < a.size(); ) // start with the second element and loop to the last
a[i] > a[i - 1] // if the current element is greater than the previous ...
? puts( // ... print a new line:
&("Excelsior" + // "Excelsior, followed by ...
std::string(++ n, 33)) // ... the appropriate number of exclamation marks (33 is ASCII code for '!'); increment the run length
[0]) // puts() takes a C string
: n = 0; // else reset run length
}
C++ 14 (g++), 123 118 bytes
(auto a){for(int n=0,i=0;++i<a.size();)a[i]>a[i-1]?puts(&("Excelsior"+std::string(++n,33))[0]):n=0;}
Fortunately std::string
has a constructor that repeats a char
. Try it online here.
Thanks to gastropner for saving 5 bytes.
Ungolfed:
(auto a) { // void lambda taking a std::array of integer
for(int n = 0, // length of the current run
i = 0; // loop variable
++ i < a.size(); ) // start with the second element and loop to the last
a[i] > a[i - 1] // if the current element is greater than the previous ...
? puts( // ... print a new line:
&("Excelsior" + // "Excelsior, followed by ...
std::string(++ n, 33)) // ... the appropriate number of exclamation marks (33 is ASCII code for '!'); increment the run length
[0]) // puts() takes a C string
: n = 0; // else reset run length
}
edited Nov 15 at 10:06
answered Nov 14 at 11:43
O.O.Balance
1,2401318
1,2401318
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
add a comment |
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
You can shave off another 5 bytes
– gastropner
Nov 14 at 21:14
add a comment |
up vote
2
down vote
C# (.NET Core), 115 107 105 bytes
a=>{var b="";for(int i=0;++i<a.Length;)if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));else b="";}
Try it online!
-8 bytes: changed b
to a string holding "!"s from an int counter
-2 bytes: set b+="!"
as an inline function (thanks to Zac Faragher)
Uses an Action delegate to pull in the input and not require a return.
Ungolfed:
a => {
var b = ""; // initialize the '!' string (b)
for(int i = 0; ++i < a.Length;) // from index 1 until the end of a
if(a[i] > a[i - 1]) // if the current index is greater than the previous index
Console.WriteLine("Excelsior" + // on a new line, print "Excelsior"
(b += "!")); // add a "!" to b, and print the string
else // if the current index is not greater than the previous index
b = ""; // reset b
}
1
you can save 2 bytes by making theb+="!"
inline with the Excelsiorif(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!
– Zac Faragher
Nov 16 at 3:48
add a comment |
up vote
2
down vote
C# (.NET Core), 115 107 105 bytes
a=>{var b="";for(int i=0;++i<a.Length;)if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));else b="";}
Try it online!
-8 bytes: changed b
to a string holding "!"s from an int counter
-2 bytes: set b+="!"
as an inline function (thanks to Zac Faragher)
Uses an Action delegate to pull in the input and not require a return.
Ungolfed:
a => {
var b = ""; // initialize the '!' string (b)
for(int i = 0; ++i < a.Length;) // from index 1 until the end of a
if(a[i] > a[i - 1]) // if the current index is greater than the previous index
Console.WriteLine("Excelsior" + // on a new line, print "Excelsior"
(b += "!")); // add a "!" to b, and print the string
else // if the current index is not greater than the previous index
b = ""; // reset b
}
1
you can save 2 bytes by making theb+="!"
inline with the Excelsiorif(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!
– Zac Faragher
Nov 16 at 3:48
add a comment |
up vote
2
down vote
up vote
2
down vote
C# (.NET Core), 115 107 105 bytes
a=>{var b="";for(int i=0;++i<a.Length;)if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));else b="";}
Try it online!
-8 bytes: changed b
to a string holding "!"s from an int counter
-2 bytes: set b+="!"
as an inline function (thanks to Zac Faragher)
Uses an Action delegate to pull in the input and not require a return.
Ungolfed:
a => {
var b = ""; // initialize the '!' string (b)
for(int i = 0; ++i < a.Length;) // from index 1 until the end of a
if(a[i] > a[i - 1]) // if the current index is greater than the previous index
Console.WriteLine("Excelsior" + // on a new line, print "Excelsior"
(b += "!")); // add a "!" to b, and print the string
else // if the current index is not greater than the previous index
b = ""; // reset b
}
C# (.NET Core), 115 107 105 bytes
a=>{var b="";for(int i=0;++i<a.Length;)if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));else b="";}
Try it online!
-8 bytes: changed b
to a string holding "!"s from an int counter
-2 bytes: set b+="!"
as an inline function (thanks to Zac Faragher)
Uses an Action delegate to pull in the input and not require a return.
Ungolfed:
a => {
var b = ""; // initialize the '!' string (b)
for(int i = 0; ++i < a.Length;) // from index 1 until the end of a
if(a[i] > a[i - 1]) // if the current index is greater than the previous index
Console.WriteLine("Excelsior" + // on a new line, print "Excelsior"
(b += "!")); // add a "!" to b, and print the string
else // if the current index is not greater than the previous index
b = ""; // reset b
}
edited Nov 16 at 13:17
answered Nov 14 at 20:57
Meerkat
2218
2218
1
you can save 2 bytes by making theb+="!"
inline with the Excelsiorif(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!
– Zac Faragher
Nov 16 at 3:48
add a comment |
1
you can save 2 bytes by making theb+="!"
inline with the Excelsiorif(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!
– Zac Faragher
Nov 16 at 3:48
1
1
you can save 2 bytes by making the
b+="!"
inline with the Excelsior if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!– Zac Faragher
Nov 16 at 3:48
you can save 2 bytes by making the
b+="!"
inline with the Excelsior if(a[i]>a[i-1])Console.WriteLine("Excelsior"+(b+="!"));
Try it online!– Zac Faragher
Nov 16 at 3:48
add a comment |
up vote
2
down vote
PHP, 117 109 bytes
<?php do{$i=next($argv);if($p!==null&&$p<$i){$e.='!';echo "
Excelsior$e";}else$e='';$p=$i;}while($i!==false);
Try it online!
add a comment |
up vote
2
down vote
PHP, 117 109 bytes
<?php do{$i=next($argv);if($p!==null&&$p<$i){$e.='!';echo "
Excelsior$e";}else$e='';$p=$i;}while($i!==false);
Try it online!
add a comment |
up vote
2
down vote
up vote
2
down vote
PHP, 117 109 bytes
<?php do{$i=next($argv);if($p!==null&&$p<$i){$e.='!';echo "
Excelsior$e";}else$e='';$p=$i;}while($i!==false);
Try it online!
PHP, 117 109 bytes
<?php do{$i=next($argv);if($p!==null&&$p<$i){$e.='!';echo "
Excelsior$e";}else$e='';$p=$i;}while($i!==false);
Try it online!
edited Nov 16 at 20:22
answered Nov 16 at 13:42
Scoots
404311
404311
add a comment |
add a comment |
up vote
2
down vote
J, 50 bytes
'Excelsior',"1'!'#"0~[:;@(([:<+/);._1)0,2</ ::0]
Try it online!
ungolfed
'Excelsior' ,"1 '!' #"0~ [: ;@(([: < +/);._1) 0 , 2 </ ::0 ]
add a comment |
up vote
2
down vote
J, 50 bytes
'Excelsior',"1'!'#"0~[:;@(([:<+/);._1)0,2</ ::0]
Try it online!
ungolfed
'Excelsior' ,"1 '!' #"0~ [: ;@(([: < +/);._1) 0 , 2 </ ::0 ]
add a comment |
up vote
2
down vote
up vote
2
down vote
J, 50 bytes
'Excelsior',"1'!'#"0~[:;@(([:<+/);._1)0,2</ ::0]
Try it online!
ungolfed
'Excelsior' ,"1 '!' #"0~ [: ;@(([: < +/);._1) 0 , 2 </ ::0 ]
J, 50 bytes
'Excelsior',"1'!'#"0~[:;@(([:<+/);._1)0,2</ ::0]
Try it online!
ungolfed
'Excelsior' ,"1 '!' #"0~ [: ;@(([: < +/);._1) 0 , 2 </ ::0 ]
answered Nov 17 at 2:38
Jonah
1,981816
1,981816
add a comment |
add a comment |
up vote
1
down vote
Java, 113 bytes
String i="";for(int a=0;a<s.length-1;a++){if(s[a+1]>s[a]){i+="!";System.out.println("Excelsior"+i);}else{i="";}}
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1
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Java, 113 bytes
String i="";for(int a=0;a<s.length-1;a++){if(s[a+1]>s[a]){i+="!";System.out.println("Excelsior"+i);}else{i="";}}
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up vote
1
down vote
up vote
1
down vote
Java, 113 bytes
String i="";for(int a=0;a<s.length-1;a++){if(s[a+1]>s[a]){i+="!";System.out.println("Excelsior"+i);}else{i="";}}
Java, 113 bytes
String i="";for(int a=0;a<s.length-1;a++){if(s[a+1]>s[a]){i+="!";System.out.println("Excelsior"+i);}else{i="";}}
edited Nov 14 at 16:27
answered Nov 14 at 16:12
isaace
1313
1313
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1
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VBA, 114 bytes
For i=0 To UBound(a)-LBound(a)-1 If a(i+1)>a(i)Then s=s&"!" Debug.Print("Excelsior"&s&"") Else s="" End If Next i
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1
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VBA, 114 bytes
For i=0 To UBound(a)-LBound(a)-1 If a(i+1)>a(i)Then s=s&"!" Debug.Print("Excelsior"&s&"") Else s="" End If Next i
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1
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up vote
1
down vote
VBA, 114 bytes
For i=0 To UBound(a)-LBound(a)-1 If a(i+1)>a(i)Then s=s&"!" Debug.Print("Excelsior"&s&"") Else s="" End If Next i
VBA, 114 bytes
For i=0 To UBound(a)-LBound(a)-1 If a(i+1)>a(i)Then s=s&"!" Debug.Print("Excelsior"&s&"") Else s="" End If Next i
answered Nov 14 at 20:06
isaace
1313
1313
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1
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Python 3, 87 bytes
c='!'
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
Or 97 with the following:
c='!';n=input()
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
This assumes inputs will be in the format:
32105
12345
<null input>
1
1213415
333343
1
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
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up vote
1
down vote
Python 3, 87 bytes
c='!'
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
Or 97 with the following:
c='!';n=input()
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
This assumes inputs will be in the format:
32105
12345
<null input>
1
1213415
333343
1
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
add a comment |
up vote
1
down vote
up vote
1
down vote
Python 3, 87 bytes
c='!'
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
Or 97 with the following:
c='!';n=input()
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
This assumes inputs will be in the format:
32105
12345
<null input>
1
1213415
333343
Python 3, 87 bytes
c='!'
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
Or 97 with the following:
c='!';n=input()
for i in range(1,len(n)):
if n[i]>n[i-1]:print('Excelsior'+c);c+='!'
else:c='!'
This assumes inputs will be in the format:
32105
12345
<null input>
1
1213415
333343
edited Nov 16 at 14:56
answered Nov 16 at 14:23
Henry T
115
115
1
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
add a comment |
1
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
1
1
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
Your first program is invalid as it takes input through a predefined variable. The second is invalud as it can't distinguish between numbers with multiple digits. Why not use Python 2 or turn it into a function instead?
– Jo King
Nov 16 at 21:22
add a comment |
up vote
1
down vote
Japt, 25 bytes
ä< ®?`ExlÐâ`+'!p°T:T=0
f
Try it online!
add a comment |
up vote
1
down vote
Japt, 25 bytes
ä< ®?`ExlÐâ`+'!p°T:T=0
f
Try it online!
add a comment |
up vote
1
down vote
up vote
1
down vote
Japt, 25 bytes
ä< ®?`ExlÐâ`+'!p°T:T=0
f
Try it online!
Japt, 25 bytes
ä< ®?`ExlÐâ`+'!p°T:T=0
f
Try it online!
answered Nov 16 at 16:08
Oliver
4,4901828
4,4901828
add a comment |
add a comment |
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ouflak assumes integers are 1 digit long, is that ok
– ASCII-only
Nov 14 at 10:48
1
@ASCII-only not really. I don't know if LUA has a limitation with that, but if that's not the case ouflak should parse integers of any length.
– Charlie
Nov 14 at 11:04
@Charlie I don't know Lua, but although it's verbose, it is possible to take for example a space-delimited input and split like this.
– Kevin Cruijssen
Nov 14 at 13:59
I'm looking at it. The trick is to be able to handle both scenarios.
– ouflak
Nov 14 at 14:17
FWIW languages like C or Javascript will only handle integers within its precision (9/16 digits) anyway.
– user202729
Nov 14 at 16:20