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0

As you said && and and have different precedence, however the explanation for the following example: if [1,2,3,4].include? 2 and nil.nil? puts :hello end #=> hello is the binding strenght of the and as you can read here: Difference between "and" and && in Ruby? This basically explains that 2 and nil.nil? will be evaluated ...


1

I don't know how swift does it, but it's not that difficult. One approach is to first construct an AST in which an expressions is just a list of operands (including parenthesized subexpressions) and operators. Once the initial parse is complete and operators are declared, precedence (and fixity, if necessary) can be attached to each operator, and the AST is ...


0

According to Apple's Operation Declaration documentation The precedence level can be any whole number (decimal integer) from 0 to 255 Although the precedence level is a specific number, it is significant only relative to another operator. The simple answer is that 90 to 160 fall near the center of the 0 to 255 range. Now if you check all of ...


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?: and = have the same operator precedence, and bind right-to-left. See cppreference.


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And as a slightly meta-ish answer, the overarching fix is always compiling with warnings enabled: $ gcc t.c -Wall t.c: In function ‘main’: t.c:7:5: warning: suggest parentheses around assignment used as truth value [-Wparentheses] while (ch = getchar() != '\n') ^ t.c:12:1: warning: control reaches end of non-void function [-Wreturn-type] } ^ ...


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Because you need to write it as while ((ch = getchar()) != '\n')


28

(ch = getchar() != '\n') should be rewritten as ((ch = getchar()) != '\n') Because != binds tighter than = in C operator precedence table. Operator are not ordered from left to right (reading direction of english) as one might expect. For example result of 2 + 3 * 5 is 17 and not 25. This is because * will be performed before performing +, because * ...


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You need to be aware of operator precedence - comparison operators such as != have a higher precedence than assignment (=). Use parentheses to enforce the required behaviour, i.e. change: while (ch = getchar() != '\n') to: while ((ch = getchar()) != '\n') Addendum: be sure to take heed of the advice from @TomGoodfellow in a separate answer below - ...


12

The parentheses just describe how the sub-expressions will be grouped together. Parenthesizing doesn't mean it will be evaluated first. Rather, the rule in java is evaluate each sub-expression strictly from left to right. Always remember that the order of evaluation has absolutely nothing to do with operator precedence and associativity. Java Oracle ...


24

The expression (++y * (y++ + 5)); will be placed in a stack something like this: 1. [++y] 2. [operation: *] 3. [y++ + 5] // grouped because of the parenthesis And it will be executed in that order, as result 1. 10+1 = [11] // y incremented 2. [operation: *] 3. 11+5 = [16] // y will only increment after this operation The the expression is evaluated as ...


1

The calculation is going on following order z= (++10 * (10++ + 5)) z= (11 * (11 + 5))//++ (prefix or postfix) has higher precedence than + or * z= (11 * 16) z= 176


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First y++ + 5 will be executed because of the precedence of the innermost parentheses Precedence and evaluation order are not the same thing. All binary expressions except the assignment expression are evaluated left-to-right. Therefore y++ is evaluated before the parenthesized expression on the right.


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First will be executed ++y. y will be 11. Then will be executed y + 5 (actually y++ + 5 can be written as 5 + y++ which is interpreted as (5 + y) and then y++). z will become 11 * 16 = 176. y will be 12 after the calculation finishes.



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