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The following code produces a "lvalue required as left operand of assignment"

if( c >= 'A' && c <= 'Z'  || c = " " || c = ",") {

I assume I'm writing this wrong, what is wrong? and how would I write it correctly? I would appreciate any help! :)

Thanks.

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The code you have shown cannot produce the diagnostic you are getting, unless c is a macro that expands to a non-lvalue. If c is declared as a plain variable, c = " " should produce "incompatible types in assignment" or something similar. My guess is that in your actual code you're using f() = " " (i.e., a function's return value instead of c). –  Alok Singhal Jun 16 '10 at 3:09

3 Answers 3

up vote 8 down vote accepted

You should use single quotes for chars and do double equals for equality (otherwise it changes the value of c)

if( c >= 'A' && c <= 'Z'  || c == ' ' || c == ',') {

Furthermore, you might consider something like this to make your boolean logic more clear:

if( (c >= 'A' && c <= 'Z')  || c == ' ' || c == ',') {

Although your boolean logic structure works equivalently (&& takes precedence over ||), things like this might trip you up in the future.

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FWIW, I'd use ('A' <= c && c <= 'Z') to make that bit of logic clearly show that 'A' and 'Z' are the 'outer' bounds and have the expression most resemble the math-style 'A' <= c <= 'Z' –  Michael Burr Jun 16 '10 at 2:00

equality is ==, = is assignment. You want to use ==. Also "" is a char*, single quotes do a character.

Also, adding some parens to your condition would make your code much easier to read. Like so

 ((x == 'c' && y == 'b') || (z == ',') || (z == ' '))
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= is the assigning operator, not the comparing operator. You are looking for ==.

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