Derive $sum_{s=r}^{infty} binom{m}{s} binom{s}{r}(-1)^s=0 $ using an identity $(1 + x)^ m (1 + x)^{ -(r+1)} =...
$begingroup$
To prove:
$$sum_{s=r}^{infty}binom{m}{s} binom{s}{r}(-1)^s=0 $$
Use the identity: $$(1 + x)^
m (1 + x)^{
-(r+1)} = (1 + x)^{
m-r-1}$$
I have trouble understanding the hint, could somebody help me understand what is meant?
Hint: use the generating function for negative powers of $1+x$ to determine the coefficient of $x^{
m−r}$
in left and right hand
side of this identity, this coefficient is $0$. Why? Then derive the result by suitable substitutions of the summation variables.
I specifically don't understand what is meant with "using the generating function for negative powers of $1+x$ " and determining the coefficient related to $x^{m-r}$
The formula for negative powers would give me:
$$(1+x)^{-n} = sum_{k=0} ^{infty} binom{-n}{k}x^k$$
If I would write this out for both sides I get:
$$ sum_{k=0} ^{infty} binom{m}{k}x^k sum_{k=0} ^{infty} binom{-(r+1)}{k}x^k = sum_{k=0} ^{infty} binom{m-r-1}{k}x^k$$
I know I can determine the coefficient of $x^n$ by writing $sum a_k b_{n-k}=c_n$.
combinatorics summation binomial-coefficients generating-functions
$endgroup$
add a comment |
$begingroup$
To prove:
$$sum_{s=r}^{infty}binom{m}{s} binom{s}{r}(-1)^s=0 $$
Use the identity: $$(1 + x)^
m (1 + x)^{
-(r+1)} = (1 + x)^{
m-r-1}$$
I have trouble understanding the hint, could somebody help me understand what is meant?
Hint: use the generating function for negative powers of $1+x$ to determine the coefficient of $x^{
m−r}$
in left and right hand
side of this identity, this coefficient is $0$. Why? Then derive the result by suitable substitutions of the summation variables.
I specifically don't understand what is meant with "using the generating function for negative powers of $1+x$ " and determining the coefficient related to $x^{m-r}$
The formula for negative powers would give me:
$$(1+x)^{-n} = sum_{k=0} ^{infty} binom{-n}{k}x^k$$
If I would write this out for both sides I get:
$$ sum_{k=0} ^{infty} binom{m}{k}x^k sum_{k=0} ^{infty} binom{-(r+1)}{k}x^k = sum_{k=0} ^{infty} binom{m-r-1}{k}x^k$$
I know I can determine the coefficient of $x^n$ by writing $sum a_k b_{n-k}=c_n$.
combinatorics summation binomial-coefficients generating-functions
$endgroup$
5
$begingroup$
Is there a missing sum sign somewhere in your first equation?
$endgroup$
– Connor Harris
Nov 30 '18 at 17:15
$begingroup$
Yes, I made some typos with the indices and summations
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:52
add a comment |
$begingroup$
To prove:
$$sum_{s=r}^{infty}binom{m}{s} binom{s}{r}(-1)^s=0 $$
Use the identity: $$(1 + x)^
m (1 + x)^{
-(r+1)} = (1 + x)^{
m-r-1}$$
I have trouble understanding the hint, could somebody help me understand what is meant?
Hint: use the generating function for negative powers of $1+x$ to determine the coefficient of $x^{
m−r}$
in left and right hand
side of this identity, this coefficient is $0$. Why? Then derive the result by suitable substitutions of the summation variables.
I specifically don't understand what is meant with "using the generating function for negative powers of $1+x$ " and determining the coefficient related to $x^{m-r}$
The formula for negative powers would give me:
$$(1+x)^{-n} = sum_{k=0} ^{infty} binom{-n}{k}x^k$$
If I would write this out for both sides I get:
$$ sum_{k=0} ^{infty} binom{m}{k}x^k sum_{k=0} ^{infty} binom{-(r+1)}{k}x^k = sum_{k=0} ^{infty} binom{m-r-1}{k}x^k$$
I know I can determine the coefficient of $x^n$ by writing $sum a_k b_{n-k}=c_n$.
combinatorics summation binomial-coefficients generating-functions
$endgroup$
To prove:
$$sum_{s=r}^{infty}binom{m}{s} binom{s}{r}(-1)^s=0 $$
Use the identity: $$(1 + x)^
m (1 + x)^{
-(r+1)} = (1 + x)^{
m-r-1}$$
I have trouble understanding the hint, could somebody help me understand what is meant?
Hint: use the generating function for negative powers of $1+x$ to determine the coefficient of $x^{
m−r}$
in left and right hand
side of this identity, this coefficient is $0$. Why? Then derive the result by suitable substitutions of the summation variables.
I specifically don't understand what is meant with "using the generating function for negative powers of $1+x$ " and determining the coefficient related to $x^{m-r}$
The formula for negative powers would give me:
$$(1+x)^{-n} = sum_{k=0} ^{infty} binom{-n}{k}x^k$$
If I would write this out for both sides I get:
$$ sum_{k=0} ^{infty} binom{m}{k}x^k sum_{k=0} ^{infty} binom{-(r+1)}{k}x^k = sum_{k=0} ^{infty} binom{m-r-1}{k}x^k$$
I know I can determine the coefficient of $x^n$ by writing $sum a_k b_{n-k}=c_n$.
combinatorics summation binomial-coefficients generating-functions
combinatorics summation binomial-coefficients generating-functions
edited Dec 3 '18 at 16:58
Martin Sleziak
44.7k10119272
44.7k10119272
asked Nov 30 '18 at 16:59
Wesley StrikWesley Strik
2,057423
2,057423
5
$begingroup$
Is there a missing sum sign somewhere in your first equation?
$endgroup$
– Connor Harris
Nov 30 '18 at 17:15
$begingroup$
Yes, I made some typos with the indices and summations
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:52
add a comment |
5
$begingroup$
Is there a missing sum sign somewhere in your first equation?
$endgroup$
– Connor Harris
Nov 30 '18 at 17:15
$begingroup$
Yes, I made some typos with the indices and summations
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:52
5
5
$begingroup$
Is there a missing sum sign somewhere in your first equation?
$endgroup$
– Connor Harris
Nov 30 '18 at 17:15
$begingroup$
Is there a missing sum sign somewhere in your first equation?
$endgroup$
– Connor Harris
Nov 30 '18 at 17:15
$begingroup$
Yes, I made some typos with the indices and summations
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:52
$begingroup$
Yes, I made some typos with the indices and summations
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:52
add a comment |
3 Answers
3
active
oldest
votes
$begingroup$
First of all, your formula for negative powers makes no sense. Your variables are all messed up. The power you're raising stuff to is $n$, which is also the index for your sum and $k$ is undefined. The formula on the RHS appears to be the expansion of $(1+x)^{-k}$, but I find its easiest to just recompute these things and doing so will give us a more convenient form of the formula anyway.
The correct approach is the following.
Start with the geometric series: $$frac{1}{1-x} = sum_{i=0}^infty x^i.$$
Then raise both sides to the $k$th power, to get
$$(1-x)^{-k} = left(sum_{i=0}^infty x^iright)^k.$$
The coefficient of $x^ell$ in the right hand side is the number of ways to choose $k$ distinct, ordered nonnegative integers that sum to $ell$. This is the stars and bars problem, and has the well known solution $binom{ell+k-1}{k-1}$.
Thus we have
$$(1-x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} x^i.$$
Finally, substitute $-x$ for $x$ to get
$$(1+x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} (-1)^i x^i.$$
I think this might be equivalent to the formula you've given, but nonetheless, I believe they want you to use this form of it, since it has the appropriate $(-1)^i$ that your formula is missing.
Now, if we multiply $(1+x)^m(1+x)^{-(r+1)}$, apply the formula and then take the coefficient of $m-r$, we get
$$sum_{s=0}^{m-r} binom{m}{s}binom{(m-r-s) + (r+1) -1}{(r+1)-1}(-1)^{m-s}$$
$$=sum_{s=0}^{m-r} binom{m}{s}binom{m-s}{r}(-1)^{m-s}.$$
Now if we reindex, with the new $s$ being $m-s$, we find that the sum runs from $r$ to $m$, and we have
$$=sum_{s=r}^m binom{m}{m-s}binom{s}{r}(-1)^s=sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s.$$
The coefficient of $x^{m-r}$ on the right hand side is obviously zero, since the rhs has degree $m-r-1$, so we get
$$sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s=0,$$
as desired.
$endgroup$
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
add a comment |
$begingroup$
Here is the combinatorial solution no one asked for.
First of all, when $m=r$ the actual value of the LHS is $(-1)^m$, so from now on assume $mneq r$. We will answer the following question in two ways:
How many of the size $r$ subsets of an $m$ element set have size equal to $m$?
Answer 1: Obviously zero, since $mneq r$, so there are no sets with sizes equal to both $m$ and $r$! (Note when $m=r$, this answer would instead be $1$).
Answer 2: We will answer this using inclusion exclusion. First, the total number of subsets of size $r$ is $binom{m}r$. For each element $i$ of the set, we must subtract the "bad" size $r$ subsets which do not contain $i$ (if a set has size unequal to $m$, it must be missing some element). There are $binom{m-1}r$ subsets of size $r$ which do not contain $i$, and $binom{m}1$ ways to choose $i$. But then we must add back in the double intersections, then subtract the triple intersections, and so on. The result is
$$
binom{m}0binom{m}r-binom{m}1binom{m-1}r+binom{m}2binom{m-2}r-dots=sum_{sge 0}(-1)^sbinom{m}sbinom{m-s}r
$$
which after some rearranging is $(-1)^m$ times the desired summation.
$endgroup$
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
1
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
add a comment |
$begingroup$
Here is another combinatorial solution to the problem which no one asked for.
Assume, $m>r$. For a given $s$, $binom{m}{s} binom{s}{r}$ counts the number of ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m},mid Xmid =s, mid Ymid =r$.
Given $(X,Y)$, let $x$ be the smallest element of ${1,2,...,m}$ such that $x$ is not in $Y$. Then define the involution $f((X,Y)) = (Xoplus x, Y )$.
$Bigg( Xoplus x=begin{cases}
Xsetminus {x} & xin X\
Xcup {x} & xnotin X\
end{cases}Bigg)
$
Therefore, $f((X,Y))$ is a bijection from the ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ even to ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ odd.
Hence, $$sum_limits {s even}binom{m}{s} binom{s}{r}=sum_limits {s odd}binom{m}{s} binom{s}{r}$$
$blacksquare$
$endgroup$
add a comment |
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3 Answers
3
active
oldest
votes
3 Answers
3
active
oldest
votes
active
oldest
votes
active
oldest
votes
$begingroup$
First of all, your formula for negative powers makes no sense. Your variables are all messed up. The power you're raising stuff to is $n$, which is also the index for your sum and $k$ is undefined. The formula on the RHS appears to be the expansion of $(1+x)^{-k}$, but I find its easiest to just recompute these things and doing so will give us a more convenient form of the formula anyway.
The correct approach is the following.
Start with the geometric series: $$frac{1}{1-x} = sum_{i=0}^infty x^i.$$
Then raise both sides to the $k$th power, to get
$$(1-x)^{-k} = left(sum_{i=0}^infty x^iright)^k.$$
The coefficient of $x^ell$ in the right hand side is the number of ways to choose $k$ distinct, ordered nonnegative integers that sum to $ell$. This is the stars and bars problem, and has the well known solution $binom{ell+k-1}{k-1}$.
Thus we have
$$(1-x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} x^i.$$
Finally, substitute $-x$ for $x$ to get
$$(1+x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} (-1)^i x^i.$$
I think this might be equivalent to the formula you've given, but nonetheless, I believe they want you to use this form of it, since it has the appropriate $(-1)^i$ that your formula is missing.
Now, if we multiply $(1+x)^m(1+x)^{-(r+1)}$, apply the formula and then take the coefficient of $m-r$, we get
$$sum_{s=0}^{m-r} binom{m}{s}binom{(m-r-s) + (r+1) -1}{(r+1)-1}(-1)^{m-s}$$
$$=sum_{s=0}^{m-r} binom{m}{s}binom{m-s}{r}(-1)^{m-s}.$$
Now if we reindex, with the new $s$ being $m-s$, we find that the sum runs from $r$ to $m$, and we have
$$=sum_{s=r}^m binom{m}{m-s}binom{s}{r}(-1)^s=sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s.$$
The coefficient of $x^{m-r}$ on the right hand side is obviously zero, since the rhs has degree $m-r-1$, so we get
$$sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s=0,$$
as desired.
$endgroup$
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
add a comment |
$begingroup$
First of all, your formula for negative powers makes no sense. Your variables are all messed up. The power you're raising stuff to is $n$, which is also the index for your sum and $k$ is undefined. The formula on the RHS appears to be the expansion of $(1+x)^{-k}$, but I find its easiest to just recompute these things and doing so will give us a more convenient form of the formula anyway.
The correct approach is the following.
Start with the geometric series: $$frac{1}{1-x} = sum_{i=0}^infty x^i.$$
Then raise both sides to the $k$th power, to get
$$(1-x)^{-k} = left(sum_{i=0}^infty x^iright)^k.$$
The coefficient of $x^ell$ in the right hand side is the number of ways to choose $k$ distinct, ordered nonnegative integers that sum to $ell$. This is the stars and bars problem, and has the well known solution $binom{ell+k-1}{k-1}$.
Thus we have
$$(1-x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} x^i.$$
Finally, substitute $-x$ for $x$ to get
$$(1+x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} (-1)^i x^i.$$
I think this might be equivalent to the formula you've given, but nonetheless, I believe they want you to use this form of it, since it has the appropriate $(-1)^i$ that your formula is missing.
Now, if we multiply $(1+x)^m(1+x)^{-(r+1)}$, apply the formula and then take the coefficient of $m-r$, we get
$$sum_{s=0}^{m-r} binom{m}{s}binom{(m-r-s) + (r+1) -1}{(r+1)-1}(-1)^{m-s}$$
$$=sum_{s=0}^{m-r} binom{m}{s}binom{m-s}{r}(-1)^{m-s}.$$
Now if we reindex, with the new $s$ being $m-s$, we find that the sum runs from $r$ to $m$, and we have
$$=sum_{s=r}^m binom{m}{m-s}binom{s}{r}(-1)^s=sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s.$$
The coefficient of $x^{m-r}$ on the right hand side is obviously zero, since the rhs has degree $m-r-1$, so we get
$$sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s=0,$$
as desired.
$endgroup$
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
add a comment |
$begingroup$
First of all, your formula for negative powers makes no sense. Your variables are all messed up. The power you're raising stuff to is $n$, which is also the index for your sum and $k$ is undefined. The formula on the RHS appears to be the expansion of $(1+x)^{-k}$, but I find its easiest to just recompute these things and doing so will give us a more convenient form of the formula anyway.
The correct approach is the following.
Start with the geometric series: $$frac{1}{1-x} = sum_{i=0}^infty x^i.$$
Then raise both sides to the $k$th power, to get
$$(1-x)^{-k} = left(sum_{i=0}^infty x^iright)^k.$$
The coefficient of $x^ell$ in the right hand side is the number of ways to choose $k$ distinct, ordered nonnegative integers that sum to $ell$. This is the stars and bars problem, and has the well known solution $binom{ell+k-1}{k-1}$.
Thus we have
$$(1-x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} x^i.$$
Finally, substitute $-x$ for $x$ to get
$$(1+x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} (-1)^i x^i.$$
I think this might be equivalent to the formula you've given, but nonetheless, I believe they want you to use this form of it, since it has the appropriate $(-1)^i$ that your formula is missing.
Now, if we multiply $(1+x)^m(1+x)^{-(r+1)}$, apply the formula and then take the coefficient of $m-r$, we get
$$sum_{s=0}^{m-r} binom{m}{s}binom{(m-r-s) + (r+1) -1}{(r+1)-1}(-1)^{m-s}$$
$$=sum_{s=0}^{m-r} binom{m}{s}binom{m-s}{r}(-1)^{m-s}.$$
Now if we reindex, with the new $s$ being $m-s$, we find that the sum runs from $r$ to $m$, and we have
$$=sum_{s=r}^m binom{m}{m-s}binom{s}{r}(-1)^s=sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s.$$
The coefficient of $x^{m-r}$ on the right hand side is obviously zero, since the rhs has degree $m-r-1$, so we get
$$sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s=0,$$
as desired.
$endgroup$
First of all, your formula for negative powers makes no sense. Your variables are all messed up. The power you're raising stuff to is $n$, which is also the index for your sum and $k$ is undefined. The formula on the RHS appears to be the expansion of $(1+x)^{-k}$, but I find its easiest to just recompute these things and doing so will give us a more convenient form of the formula anyway.
The correct approach is the following.
Start with the geometric series: $$frac{1}{1-x} = sum_{i=0}^infty x^i.$$
Then raise both sides to the $k$th power, to get
$$(1-x)^{-k} = left(sum_{i=0}^infty x^iright)^k.$$
The coefficient of $x^ell$ in the right hand side is the number of ways to choose $k$ distinct, ordered nonnegative integers that sum to $ell$. This is the stars and bars problem, and has the well known solution $binom{ell+k-1}{k-1}$.
Thus we have
$$(1-x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} x^i.$$
Finally, substitute $-x$ for $x$ to get
$$(1+x)^{-k} = sum_{i=0}^infty binom{i+k-1}{k-1} (-1)^i x^i.$$
I think this might be equivalent to the formula you've given, but nonetheless, I believe they want you to use this form of it, since it has the appropriate $(-1)^i$ that your formula is missing.
Now, if we multiply $(1+x)^m(1+x)^{-(r+1)}$, apply the formula and then take the coefficient of $m-r$, we get
$$sum_{s=0}^{m-r} binom{m}{s}binom{(m-r-s) + (r+1) -1}{(r+1)-1}(-1)^{m-s}$$
$$=sum_{s=0}^{m-r} binom{m}{s}binom{m-s}{r}(-1)^{m-s}.$$
Now if we reindex, with the new $s$ being $m-s$, we find that the sum runs from $r$ to $m$, and we have
$$=sum_{s=r}^m binom{m}{m-s}binom{s}{r}(-1)^s=sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s.$$
The coefficient of $x^{m-r}$ on the right hand side is obviously zero, since the rhs has degree $m-r-1$, so we get
$$sum_{s=r}^mbinom{m}{s}binom{s}{r}(-1)^s=0,$$
as desired.
edited Nov 30 '18 at 23:27
Wesley Strik
2,057423
2,057423
answered Nov 30 '18 at 18:01
jgonjgon
14.6k22042
14.6k22042
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
add a comment |
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
$begingroup$
I'm impressed by how you were able to answer my question so well with me doing a horrible job with the notation. Thank you.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:10
add a comment |
$begingroup$
Here is the combinatorial solution no one asked for.
First of all, when $m=r$ the actual value of the LHS is $(-1)^m$, so from now on assume $mneq r$. We will answer the following question in two ways:
How many of the size $r$ subsets of an $m$ element set have size equal to $m$?
Answer 1: Obviously zero, since $mneq r$, so there are no sets with sizes equal to both $m$ and $r$! (Note when $m=r$, this answer would instead be $1$).
Answer 2: We will answer this using inclusion exclusion. First, the total number of subsets of size $r$ is $binom{m}r$. For each element $i$ of the set, we must subtract the "bad" size $r$ subsets which do not contain $i$ (if a set has size unequal to $m$, it must be missing some element). There are $binom{m-1}r$ subsets of size $r$ which do not contain $i$, and $binom{m}1$ ways to choose $i$. But then we must add back in the double intersections, then subtract the triple intersections, and so on. The result is
$$
binom{m}0binom{m}r-binom{m}1binom{m-1}r+binom{m}2binom{m-2}r-dots=sum_{sge 0}(-1)^sbinom{m}sbinom{m-s}r
$$
which after some rearranging is $(-1)^m$ times the desired summation.
$endgroup$
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
1
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
add a comment |
$begingroup$
Here is the combinatorial solution no one asked for.
First of all, when $m=r$ the actual value of the LHS is $(-1)^m$, so from now on assume $mneq r$. We will answer the following question in two ways:
How many of the size $r$ subsets of an $m$ element set have size equal to $m$?
Answer 1: Obviously zero, since $mneq r$, so there are no sets with sizes equal to both $m$ and $r$! (Note when $m=r$, this answer would instead be $1$).
Answer 2: We will answer this using inclusion exclusion. First, the total number of subsets of size $r$ is $binom{m}r$. For each element $i$ of the set, we must subtract the "bad" size $r$ subsets which do not contain $i$ (if a set has size unequal to $m$, it must be missing some element). There are $binom{m-1}r$ subsets of size $r$ which do not contain $i$, and $binom{m}1$ ways to choose $i$. But then we must add back in the double intersections, then subtract the triple intersections, and so on. The result is
$$
binom{m}0binom{m}r-binom{m}1binom{m-1}r+binom{m}2binom{m-2}r-dots=sum_{sge 0}(-1)^sbinom{m}sbinom{m-s}r
$$
which after some rearranging is $(-1)^m$ times the desired summation.
$endgroup$
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
1
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
add a comment |
$begingroup$
Here is the combinatorial solution no one asked for.
First of all, when $m=r$ the actual value of the LHS is $(-1)^m$, so from now on assume $mneq r$. We will answer the following question in two ways:
How many of the size $r$ subsets of an $m$ element set have size equal to $m$?
Answer 1: Obviously zero, since $mneq r$, so there are no sets with sizes equal to both $m$ and $r$! (Note when $m=r$, this answer would instead be $1$).
Answer 2: We will answer this using inclusion exclusion. First, the total number of subsets of size $r$ is $binom{m}r$. For each element $i$ of the set, we must subtract the "bad" size $r$ subsets which do not contain $i$ (if a set has size unequal to $m$, it must be missing some element). There are $binom{m-1}r$ subsets of size $r$ which do not contain $i$, and $binom{m}1$ ways to choose $i$. But then we must add back in the double intersections, then subtract the triple intersections, and so on. The result is
$$
binom{m}0binom{m}r-binom{m}1binom{m-1}r+binom{m}2binom{m-2}r-dots=sum_{sge 0}(-1)^sbinom{m}sbinom{m-s}r
$$
which after some rearranging is $(-1)^m$ times the desired summation.
$endgroup$
Here is the combinatorial solution no one asked for.
First of all, when $m=r$ the actual value of the LHS is $(-1)^m$, so from now on assume $mneq r$. We will answer the following question in two ways:
How many of the size $r$ subsets of an $m$ element set have size equal to $m$?
Answer 1: Obviously zero, since $mneq r$, so there are no sets with sizes equal to both $m$ and $r$! (Note when $m=r$, this answer would instead be $1$).
Answer 2: We will answer this using inclusion exclusion. First, the total number of subsets of size $r$ is $binom{m}r$. For each element $i$ of the set, we must subtract the "bad" size $r$ subsets which do not contain $i$ (if a set has size unequal to $m$, it must be missing some element). There are $binom{m-1}r$ subsets of size $r$ which do not contain $i$, and $binom{m}1$ ways to choose $i$. But then we must add back in the double intersections, then subtract the triple intersections, and so on. The result is
$$
binom{m}0binom{m}r-binom{m}1binom{m-1}r+binom{m}2binom{m-2}r-dots=sum_{sge 0}(-1)^sbinom{m}sbinom{m-s}r
$$
which after some rearranging is $(-1)^m$ times the desired summation.
answered Nov 30 '18 at 18:45
Mike EarnestMike Earnest
23.5k12051
23.5k12051
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
1
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
add a comment |
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
1
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
I appreciate your combinatorial proof :)
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:59
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
$begingroup$
You're the unappreciated maths hero that nobody asked for, but, I'm glad you're around ^^
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:16
1
1
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
$begingroup$
I like the general approach of counting something in two different ways and both methods require some creativity and 'coefficient yoga'.
$endgroup$
– Wesley Strik
Nov 30 '18 at 23:18
add a comment |
$begingroup$
Here is another combinatorial solution to the problem which no one asked for.
Assume, $m>r$. For a given $s$, $binom{m}{s} binom{s}{r}$ counts the number of ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m},mid Xmid =s, mid Ymid =r$.
Given $(X,Y)$, let $x$ be the smallest element of ${1,2,...,m}$ such that $x$ is not in $Y$. Then define the involution $f((X,Y)) = (Xoplus x, Y )$.
$Bigg( Xoplus x=begin{cases}
Xsetminus {x} & xin X\
Xcup {x} & xnotin X\
end{cases}Bigg)
$
Therefore, $f((X,Y))$ is a bijection from the ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ even to ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ odd.
Hence, $$sum_limits {s even}binom{m}{s} binom{s}{r}=sum_limits {s odd}binom{m}{s} binom{s}{r}$$
$blacksquare$
$endgroup$
add a comment |
$begingroup$
Here is another combinatorial solution to the problem which no one asked for.
Assume, $m>r$. For a given $s$, $binom{m}{s} binom{s}{r}$ counts the number of ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m},mid Xmid =s, mid Ymid =r$.
Given $(X,Y)$, let $x$ be the smallest element of ${1,2,...,m}$ such that $x$ is not in $Y$. Then define the involution $f((X,Y)) = (Xoplus x, Y )$.
$Bigg( Xoplus x=begin{cases}
Xsetminus {x} & xin X\
Xcup {x} & xnotin X\
end{cases}Bigg)
$
Therefore, $f((X,Y))$ is a bijection from the ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ even to ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ odd.
Hence, $$sum_limits {s even}binom{m}{s} binom{s}{r}=sum_limits {s odd}binom{m}{s} binom{s}{r}$$
$blacksquare$
$endgroup$
add a comment |
$begingroup$
Here is another combinatorial solution to the problem which no one asked for.
Assume, $m>r$. For a given $s$, $binom{m}{s} binom{s}{r}$ counts the number of ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m},mid Xmid =s, mid Ymid =r$.
Given $(X,Y)$, let $x$ be the smallest element of ${1,2,...,m}$ such that $x$ is not in $Y$. Then define the involution $f((X,Y)) = (Xoplus x, Y )$.
$Bigg( Xoplus x=begin{cases}
Xsetminus {x} & xin X\
Xcup {x} & xnotin X\
end{cases}Bigg)
$
Therefore, $f((X,Y))$ is a bijection from the ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ even to ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ odd.
Hence, $$sum_limits {s even}binom{m}{s} binom{s}{r}=sum_limits {s odd}binom{m}{s} binom{s}{r}$$
$blacksquare$
$endgroup$
Here is another combinatorial solution to the problem which no one asked for.
Assume, $m>r$. For a given $s$, $binom{m}{s} binom{s}{r}$ counts the number of ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m},mid Xmid =s, mid Ymid =r$.
Given $(X,Y)$, let $x$ be the smallest element of ${1,2,...,m}$ such that $x$ is not in $Y$. Then define the involution $f((X,Y)) = (Xoplus x, Y )$.
$Bigg( Xoplus x=begin{cases}
Xsetminus {x} & xin X\
Xcup {x} & xnotin X\
end{cases}Bigg)
$
Therefore, $f((X,Y))$ is a bijection from the ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ even to ordered pairs $(X,Y)$ such that $Ysubseteq Xsubseteq {1,2,...,m} $ with $mid Xmid $ odd.
Hence, $$sum_limits {s even}binom{m}{s} binom{s}{r}=sum_limits {s odd}binom{m}{s} binom{s}{r}$$
$blacksquare$
edited Dec 3 '18 at 16:20
answered Dec 3 '18 at 15:37
Anubhab GhosalAnubhab Ghosal
1,20919
1,20919
add a comment |
add a comment |
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5
$begingroup$
Is there a missing sum sign somewhere in your first equation?
$endgroup$
– Connor Harris
Nov 30 '18 at 17:15
$begingroup$
Yes, I made some typos with the indices and summations
$endgroup$
– Wesley Strik
Nov 30 '18 at 22:52