Does the statement `int val = (++i > ++j) ? ++i : ++j;` invoke undefined behavior?2019 Community Moderator Electionsequence points in cWhy are these constructs using pre and post-increment undefined behavior?Undefined, unspecified and implementation-defined behaviorIn C is there any guarantee with code prior to undefined behavior?Undefined behavior and sequence pointsUndefined behavior and sequence points reloadedIs the behavior of i = post_increment_i() specified, unspecified, or undefined?Undefined behavior and sequence pointUndefined behavior with: c = (b=a+2) - (a=1) ;Does a[a[0]] = 1 produce undefined behavior?printf with consecutive function as argument, undefined behavior
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Does the statement `int val = (++i > ++j) ? ++i : ++j;` invoke undefined behavior?
2019 Community Moderator Electionsequence points in cWhy are these constructs using pre and post-increment undefined behavior?Undefined, unspecified and implementation-defined behaviorIn C is there any guarantee with code prior to undefined behavior?Undefined behavior and sequence pointsUndefined behavior and sequence points reloadedIs the behavior of i = post_increment_i() specified, unspecified, or undefined?Undefined behavior and sequence pointUndefined behavior with: c = (b=a+2) - (a=1) ;Does a[a[0]] = 1 produce undefined behavior?printf with consecutive function as argument, undefined behavior
Given the following program:
#include <stdio.h>
int main(void)
int i = 1, j = 2;
int val = (++i > ++j) ? ++i : ++j;
printf("%dn", val); // prints 4
return 0;
The initialization of val
seems like it could be hiding some undefined behavior, but I don't see any point at which an object is either modified more than once or modified and used without a sequence point in between. Could someone
either correct or corroborate me on this?
c ternary-operator sequence-points
|
show 3 more comments
Given the following program:
#include <stdio.h>
int main(void)
int i = 1, j = 2;
int val = (++i > ++j) ? ++i : ++j;
printf("%dn", val); // prints 4
return 0;
The initialization of val
seems like it could be hiding some undefined behavior, but I don't see any point at which an object is either modified more than once or modified and used without a sequence point in between. Could someone
either correct or corroborate me on this?
c ternary-operator sequence-points
3
Is there a sequence point? Please see this answer which states there is one "Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated (6.5.15)."
– Weather Vane
4 hours ago
You got 4. What did you expect?
– Bob Jarvis
4 hours ago
I expected 4. I don't think this code invokes UB, but I was told on another question that it does. Just wanted to eliminate any confusion as to whether that specific statement causes UB, and maybe get a better explanation that the one I provided in the question.
– max1000001
4 hours ago
the ternary expression guarantees the sequence point. I cannot find any reference to(++i > ++j)
though. Is>
a sequence point?
– Jean-François Fabre
4 hours ago
3
@Jean-FrançoisFabre No, but it doesn't need to be. There's no need for a sequence point between two changes of two different variables.++i > ++i
would be UB though.
– sepp2k
4 hours ago
|
show 3 more comments
Given the following program:
#include <stdio.h>
int main(void)
int i = 1, j = 2;
int val = (++i > ++j) ? ++i : ++j;
printf("%dn", val); // prints 4
return 0;
The initialization of val
seems like it could be hiding some undefined behavior, but I don't see any point at which an object is either modified more than once or modified and used without a sequence point in between. Could someone
either correct or corroborate me on this?
c ternary-operator sequence-points
Given the following program:
#include <stdio.h>
int main(void)
int i = 1, j = 2;
int val = (++i > ++j) ? ++i : ++j;
printf("%dn", val); // prints 4
return 0;
The initialization of val
seems like it could be hiding some undefined behavior, but I don't see any point at which an object is either modified more than once or modified and used without a sequence point in between. Could someone
either correct or corroborate me on this?
c ternary-operator sequence-points
c ternary-operator sequence-points
edited 2 hours ago
machine_1
2,47821232
2,47821232
asked 4 hours ago
max1000001max1000001
1139
1139
3
Is there a sequence point? Please see this answer which states there is one "Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated (6.5.15)."
– Weather Vane
4 hours ago
You got 4. What did you expect?
– Bob Jarvis
4 hours ago
I expected 4. I don't think this code invokes UB, but I was told on another question that it does. Just wanted to eliminate any confusion as to whether that specific statement causes UB, and maybe get a better explanation that the one I provided in the question.
– max1000001
4 hours ago
the ternary expression guarantees the sequence point. I cannot find any reference to(++i > ++j)
though. Is>
a sequence point?
– Jean-François Fabre
4 hours ago
3
@Jean-FrançoisFabre No, but it doesn't need to be. There's no need for a sequence point between two changes of two different variables.++i > ++i
would be UB though.
– sepp2k
4 hours ago
|
show 3 more comments
3
Is there a sequence point? Please see this answer which states there is one "Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated (6.5.15)."
– Weather Vane
4 hours ago
You got 4. What did you expect?
– Bob Jarvis
4 hours ago
I expected 4. I don't think this code invokes UB, but I was told on another question that it does. Just wanted to eliminate any confusion as to whether that specific statement causes UB, and maybe get a better explanation that the one I provided in the question.
– max1000001
4 hours ago
the ternary expression guarantees the sequence point. I cannot find any reference to(++i > ++j)
though. Is>
a sequence point?
– Jean-François Fabre
4 hours ago
3
@Jean-FrançoisFabre No, but it doesn't need to be. There's no need for a sequence point between two changes of two different variables.++i > ++i
would be UB though.
– sepp2k
4 hours ago
3
3
Is there a sequence point? Please see this answer which states there is one "Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated (6.5.15)."
– Weather Vane
4 hours ago
Is there a sequence point? Please see this answer which states there is one "Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated (6.5.15)."
– Weather Vane
4 hours ago
You got 4. What did you expect?
– Bob Jarvis
4 hours ago
You got 4. What did you expect?
– Bob Jarvis
4 hours ago
I expected 4. I don't think this code invokes UB, but I was told on another question that it does. Just wanted to eliminate any confusion as to whether that specific statement causes UB, and maybe get a better explanation that the one I provided in the question.
– max1000001
4 hours ago
I expected 4. I don't think this code invokes UB, but I was told on another question that it does. Just wanted to eliminate any confusion as to whether that specific statement causes UB, and maybe get a better explanation that the one I provided in the question.
– max1000001
4 hours ago
the ternary expression guarantees the sequence point. I cannot find any reference to
(++i > ++j)
though. Is >
a sequence point?– Jean-François Fabre
4 hours ago
the ternary expression guarantees the sequence point. I cannot find any reference to
(++i > ++j)
though. Is >
a sequence point?– Jean-François Fabre
4 hours ago
3
3
@Jean-FrançoisFabre No, but it doesn't need to be. There's no need for a sequence point between two changes of two different variables.
++i > ++i
would be UB though.– sepp2k
4 hours ago
@Jean-FrançoisFabre No, but it doesn't need to be. There's no need for a sequence point between two changes of two different variables.
++i > ++i
would be UB though.– sepp2k
4 hours ago
|
show 3 more comments
3 Answers
3
active
oldest
votes
The behavior of this code is well defined.
The first expression in a conditional is guaranteed to be evaluated before either the second expression or the third expression, and only one of the second or third will be evaluated. This is described in section 6.5.15p4 of the C standard:
The first operand is evaluated; there is a sequence point
between its evaluation and the evaluation of the second or third
operand (whichever is evaluated). The second operand is evaluated
only if the first compares unequal to 0; the third operand is
evaluated only if the first compares equal to 0; the result is
the value of the second or third operand (whichever is
evaluated), converted to the type described below.
In the case of your expression:
int val = (++i > ++j) ? ++i : ++j;
++i > ++j
is evaluated first. The incremented values of i
and j
are used in the comparison, so it becomes 2 > 3
. The result is false, so then ++j
is evaluated and ++i
is not. So the (again) incremented value of j
(i.e. 4) is then assigned to val
.
2
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
add a comment |
too late, but maybe useful.
(++i > ++j) ? ++i : ++j;
In the document ISO/IEC 9899:201xAnnex C(informative)Sequence points
we find that there is a sequence point
Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated
In order to be well defined behavior one must not modify 2 times (via side-effects) the same object between 2 sequence points.
In your expression the only conflict that could appear would be between the first and second ++i
or ++j
.
At every sequence point the value last stored in the object shall agree with that prescribed by the abstract machine (this is what you would compute on paper, like on a turing machine).
Quote from 5.1.2.3p3 Program execution
The presence of a sequence point between the evaluation of expressions A and B implies that every value computation and side effect associated with A is sequenced before every value computation and side effect associated with B.
When you have side-effects in your code, they are sequenced by different expressions. The rule says that between 2 sequence points you can permute these expressions as you wish.
For example. i = i++. Because none of the operators involved in this expression represent sequence points, you can permute the expressions that are side-effects as you want. The C language allows you to use any of these sequences
i = i; i = i+1;
or i = i+1; i=i;
or anything that provides the same result as the abstract semantics of computation asks for interpretation of this computation. The Standard ISO9899 defines the C language as abstract semantics.
I think the part where you enumerate the modifications toi
andj
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!
– max1000001
2 hours ago
add a comment |
There may be no UB in your program, but in the question:
Does the statement int val = (++i > ++j) ? ++i : ++j;
invoke undefined behavior?
The answer is yes. Either or both of the increment operations may overflow, since i
and j
are signed, in which case all bets are off.
Of course this doesn't happen in your full example because you've specified the values as small integers.
2
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
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
The behavior of this code is well defined.
The first expression in a conditional is guaranteed to be evaluated before either the second expression or the third expression, and only one of the second or third will be evaluated. This is described in section 6.5.15p4 of the C standard:
The first operand is evaluated; there is a sequence point
between its evaluation and the evaluation of the second or third
operand (whichever is evaluated). The second operand is evaluated
only if the first compares unequal to 0; the third operand is
evaluated only if the first compares equal to 0; the result is
the value of the second or third operand (whichever is
evaluated), converted to the type described below.
In the case of your expression:
int val = (++i > ++j) ? ++i : ++j;
++i > ++j
is evaluated first. The incremented values of i
and j
are used in the comparison, so it becomes 2 > 3
. The result is false, so then ++j
is evaluated and ++i
is not. So the (again) incremented value of j
(i.e. 4) is then assigned to val
.
2
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
add a comment |
The behavior of this code is well defined.
The first expression in a conditional is guaranteed to be evaluated before either the second expression or the third expression, and only one of the second or third will be evaluated. This is described in section 6.5.15p4 of the C standard:
The first operand is evaluated; there is a sequence point
between its evaluation and the evaluation of the second or third
operand (whichever is evaluated). The second operand is evaluated
only if the first compares unequal to 0; the third operand is
evaluated only if the first compares equal to 0; the result is
the value of the second or third operand (whichever is
evaluated), converted to the type described below.
In the case of your expression:
int val = (++i > ++j) ? ++i : ++j;
++i > ++j
is evaluated first. The incremented values of i
and j
are used in the comparison, so it becomes 2 > 3
. The result is false, so then ++j
is evaluated and ++i
is not. So the (again) incremented value of j
(i.e. 4) is then assigned to val
.
2
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
add a comment |
The behavior of this code is well defined.
The first expression in a conditional is guaranteed to be evaluated before either the second expression or the third expression, and only one of the second or third will be evaluated. This is described in section 6.5.15p4 of the C standard:
The first operand is evaluated; there is a sequence point
between its evaluation and the evaluation of the second or third
operand (whichever is evaluated). The second operand is evaluated
only if the first compares unequal to 0; the third operand is
evaluated only if the first compares equal to 0; the result is
the value of the second or third operand (whichever is
evaluated), converted to the type described below.
In the case of your expression:
int val = (++i > ++j) ? ++i : ++j;
++i > ++j
is evaluated first. The incremented values of i
and j
are used in the comparison, so it becomes 2 > 3
. The result is false, so then ++j
is evaluated and ++i
is not. So the (again) incremented value of j
(i.e. 4) is then assigned to val
.
The behavior of this code is well defined.
The first expression in a conditional is guaranteed to be evaluated before either the second expression or the third expression, and only one of the second or third will be evaluated. This is described in section 6.5.15p4 of the C standard:
The first operand is evaluated; there is a sequence point
between its evaluation and the evaluation of the second or third
operand (whichever is evaluated). The second operand is evaluated
only if the first compares unequal to 0; the third operand is
evaluated only if the first compares equal to 0; the result is
the value of the second or third operand (whichever is
evaluated), converted to the type described below.
In the case of your expression:
int val = (++i > ++j) ? ++i : ++j;
++i > ++j
is evaluated first. The incremented values of i
and j
are used in the comparison, so it becomes 2 > 3
. The result is false, so then ++j
is evaluated and ++i
is not. So the (again) incremented value of j
(i.e. 4) is then assigned to val
.
answered 4 hours ago
dbushdbush
102k13106144
102k13106144
2
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
add a comment |
2
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
2
2
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
Thank you for your detailed and direct answer!
– max1000001
3 hours ago
add a comment |
too late, but maybe useful.
(++i > ++j) ? ++i : ++j;
In the document ISO/IEC 9899:201xAnnex C(informative)Sequence points
we find that there is a sequence point
Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated
In order to be well defined behavior one must not modify 2 times (via side-effects) the same object between 2 sequence points.
In your expression the only conflict that could appear would be between the first and second ++i
or ++j
.
At every sequence point the value last stored in the object shall agree with that prescribed by the abstract machine (this is what you would compute on paper, like on a turing machine).
Quote from 5.1.2.3p3 Program execution
The presence of a sequence point between the evaluation of expressions A and B implies that every value computation and side effect associated with A is sequenced before every value computation and side effect associated with B.
When you have side-effects in your code, they are sequenced by different expressions. The rule says that between 2 sequence points you can permute these expressions as you wish.
For example. i = i++. Because none of the operators involved in this expression represent sequence points, you can permute the expressions that are side-effects as you want. The C language allows you to use any of these sequences
i = i; i = i+1;
or i = i+1; i=i;
or anything that provides the same result as the abstract semantics of computation asks for interpretation of this computation. The Standard ISO9899 defines the C language as abstract semantics.
I think the part where you enumerate the modifications toi
andj
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!
– max1000001
2 hours ago
add a comment |
too late, but maybe useful.
(++i > ++j) ? ++i : ++j;
In the document ISO/IEC 9899:201xAnnex C(informative)Sequence points
we find that there is a sequence point
Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated
In order to be well defined behavior one must not modify 2 times (via side-effects) the same object between 2 sequence points.
In your expression the only conflict that could appear would be between the first and second ++i
or ++j
.
At every sequence point the value last stored in the object shall agree with that prescribed by the abstract machine (this is what you would compute on paper, like on a turing machine).
Quote from 5.1.2.3p3 Program execution
The presence of a sequence point between the evaluation of expressions A and B implies that every value computation and side effect associated with A is sequenced before every value computation and side effect associated with B.
When you have side-effects in your code, they are sequenced by different expressions. The rule says that between 2 sequence points you can permute these expressions as you wish.
For example. i = i++. Because none of the operators involved in this expression represent sequence points, you can permute the expressions that are side-effects as you want. The C language allows you to use any of these sequences
i = i; i = i+1;
or i = i+1; i=i;
or anything that provides the same result as the abstract semantics of computation asks for interpretation of this computation. The Standard ISO9899 defines the C language as abstract semantics.
I think the part where you enumerate the modifications toi
andj
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!
– max1000001
2 hours ago
add a comment |
too late, but maybe useful.
(++i > ++j) ? ++i : ++j;
In the document ISO/IEC 9899:201xAnnex C(informative)Sequence points
we find that there is a sequence point
Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated
In order to be well defined behavior one must not modify 2 times (via side-effects) the same object between 2 sequence points.
In your expression the only conflict that could appear would be between the first and second ++i
or ++j
.
At every sequence point the value last stored in the object shall agree with that prescribed by the abstract machine (this is what you would compute on paper, like on a turing machine).
Quote from 5.1.2.3p3 Program execution
The presence of a sequence point between the evaluation of expressions A and B implies that every value computation and side effect associated with A is sequenced before every value computation and side effect associated with B.
When you have side-effects in your code, they are sequenced by different expressions. The rule says that between 2 sequence points you can permute these expressions as you wish.
For example. i = i++. Because none of the operators involved in this expression represent sequence points, you can permute the expressions that are side-effects as you want. The C language allows you to use any of these sequences
i = i; i = i+1;
or i = i+1; i=i;
or anything that provides the same result as the abstract semantics of computation asks for interpretation of this computation. The Standard ISO9899 defines the C language as abstract semantics.
too late, but maybe useful.
(++i > ++j) ? ++i : ++j;
In the document ISO/IEC 9899:201xAnnex C(informative)Sequence points
we find that there is a sequence point
Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated
In order to be well defined behavior one must not modify 2 times (via side-effects) the same object between 2 sequence points.
In your expression the only conflict that could appear would be between the first and second ++i
or ++j
.
At every sequence point the value last stored in the object shall agree with that prescribed by the abstract machine (this is what you would compute on paper, like on a turing machine).
Quote from 5.1.2.3p3 Program execution
The presence of a sequence point between the evaluation of expressions A and B implies that every value computation and side effect associated with A is sequenced before every value computation and side effect associated with B.
When you have side-effects in your code, they are sequenced by different expressions. The rule says that between 2 sequence points you can permute these expressions as you wish.
For example. i = i++. Because none of the operators involved in this expression represent sequence points, you can permute the expressions that are side-effects as you want. The C language allows you to use any of these sequences
i = i; i = i+1;
or i = i+1; i=i;
or anything that provides the same result as the abstract semantics of computation asks for interpretation of this computation. The Standard ISO9899 defines the C language as abstract semantics.
edited 2 hours ago
answered 3 hours ago
alinsoaralinsoar
8,75013251
8,75013251
I think the part where you enumerate the modifications toi
andj
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!
– max1000001
2 hours ago
add a comment |
I think the part where you enumerate the modifications toi
andj
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!
– max1000001
2 hours ago
I think the part where you enumerate the modifications to
i
and j
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!– max1000001
2 hours ago
I think the part where you enumerate the modifications to
i
and j
as "possible conflicts" adds something new and useful to the analysis. I hadn't thought of that, thanks!– max1000001
2 hours ago
add a comment |
There may be no UB in your program, but in the question:
Does the statement int val = (++i > ++j) ? ++i : ++j;
invoke undefined behavior?
The answer is yes. Either or both of the increment operations may overflow, since i
and j
are signed, in which case all bets are off.
Of course this doesn't happen in your full example because you've specified the values as small integers.
2
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
add a comment |
There may be no UB in your program, but in the question:
Does the statement int val = (++i > ++j) ? ++i : ++j;
invoke undefined behavior?
The answer is yes. Either or both of the increment operations may overflow, since i
and j
are signed, in which case all bets are off.
Of course this doesn't happen in your full example because you've specified the values as small integers.
2
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
add a comment |
There may be no UB in your program, but in the question:
Does the statement int val = (++i > ++j) ? ++i : ++j;
invoke undefined behavior?
The answer is yes. Either or both of the increment operations may overflow, since i
and j
are signed, in which case all bets are off.
Of course this doesn't happen in your full example because you've specified the values as small integers.
There may be no UB in your program, but in the question:
Does the statement int val = (++i > ++j) ? ++i : ++j;
invoke undefined behavior?
The answer is yes. Either or both of the increment operations may overflow, since i
and j
are signed, in which case all bets are off.
Of course this doesn't happen in your full example because you've specified the values as small integers.
answered 2 hours ago
Doug CurrieDoug Currie
35.8k77109
35.8k77109
2
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
add a comment |
2
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
2
2
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
I assure you that the question is not about signed integer overflow. It's about whether there is a sequence point between the first operand of the ternary operator and whichever wins from the second and the third operands.
– machine_1
1 hour ago
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3
Is there a sequence point? Please see this answer which states there is one "Between the evaluations of the first operand of the conditional ?: operator and whichever of the second and third operands is evaluated (6.5.15)."
– Weather Vane
4 hours ago
You got 4. What did you expect?
– Bob Jarvis
4 hours ago
I expected 4. I don't think this code invokes UB, but I was told on another question that it does. Just wanted to eliminate any confusion as to whether that specific statement causes UB, and maybe get a better explanation that the one I provided in the question.
– max1000001
4 hours ago
the ternary expression guarantees the sequence point. I cannot find any reference to
(++i > ++j)
though. Is>
a sequence point?– Jean-François Fabre
4 hours ago
3
@Jean-FrançoisFabre No, but it doesn't need to be. There's no need for a sequence point between two changes of two different variables.
++i > ++i
would be UB though.– sepp2k
4 hours ago