76

Why when I use this: (assuming i = 1)

divID = "question-" + i+1;

I get question-11 and not question-2?

  • javascript first add value of i to string and then 1 – jcubic May 11 '11 at 8:02

14 Answers 14

75

Use this instead:

var divID = "question-" + (i+1)

It's a fairly common problem and doesn't just happen in JavaScript. The idea is that + can represent both concatenation and addition.

Since the + operator will be handled left-to-right the decisions in your code look like this:

  • "question-" + i: since "question-" is a string, we'll do concatenation, resulting in "question-1"
  • "question-1" + 1: since "queston-1" is a string, we'll do concatenation, resulting in "question-11".

With "question-" + (i+1) it's different:

  • since the (i+1) is in parenthesis, its value must be calculated before the first + can be applied:
    • i is numeric, 1 is numeric, so we'll do addition, resulting in 2
  • "question-" + 2: since "question-" is a string, we'll do concatenation, resulting in "question-2".
| improve this answer | |
  • Worked, thanx! but can you tell me what't the difference? – ilyo May 11 '11 at 8:04
  • 1
    @IlyaD - Operator Precedence relevant operator is Addition which is handled left to right. So it's doing something like: divID = ("question-" + i) + 1; – Shadow Wizard is Ear For You May 11 '11 at 8:10
  • 1
    This dint work in my case eg "Question" + (i + j) it assumed both variables as string, better to go with below solution as "question-" + (i*1+j) – Lokesh Jul 24 '13 at 10:27
  • I was surprised just now to find this didn't work: console.log('Add City Row: '+(i+1)); Even with the math in parentheses, it's concatenating them. – Rikaelus Jun 8 '15 at 4:44
  • Great description of why this happens. – apex Feb 12 '18 at 0:52
33

You may also use this

divID = "question-" + (i*1+1); 

to be sure that i is converted to integer.

| improve this answer | |
18

Use only:

divID = "question-" + parseInt(i) + 1;

When "n" comes from html input field or is declared as string, you need to use explicit conversion.

var n = "1"; //type is string
var frstCol = 5;
lstCol = frstCol + parseInt(n);

If "n" is integer, don't need conversion.

n = 1; //type is int
var frstCol = 5, lstCol = frstCol + n;
| improve this answer | |
  • 6
    This answer is very wrong. The problem remains that concatenation and addition are left-associative. That is: "question-" + parseInt(i) + 1 === ("question-" + parseInt(i)) + 1. See Joachim's answer for more details. Also, (+i) is more concise than parseInt(i) – Zaq Jun 18 '14 at 23:37
  • 1
    The syntax should have been: divID = "question-" + (parseInt(i) + 1) – Panini Luncher Mar 18 '15 at 1:45
  • 3
    This answer is completely wrong. And parseInt is not supposed to be called with a number. – Oriol May 9 '16 at 17:36
  • If anything, the syntax should have included parseInt(i, 10). I don’t get how this answer, which remains completely wrong to this day, got 21 upvotes. – user4642212 Jul 3 at 3:05
  • The only solution that worked for me, those parens stuff didn't work in my case. – mimi Oct 28 at 14:09
9

Since you are concatenating numbers on to a string, the whole thing is treated as a string. When you want to add numbers together, you either need to do it separately and assign it to a var and use that var, like this:

i = i + 1;
divID = "question-" + i;

Or you need to specify the number addition like this:

divID = "question-" + Number(i+1);

EDIT

I should have added this long ago, but based on the comments, this works as well:

divID = "question-" + (i+1);
| improve this answer | |
  • 4
    The Number is not required, just the parens. – Jamiec May 11 '11 at 8:04
  • Yeah, seeing the other answers here I realized that. I am no js guru for sure. I thought you had to cast the addition using Number, but I should have known. JS just seems to be able to "figure it out", which is one of the really cool aspects of the language. Thanks for the comment. – Tim Hobbs May 11 '11 at 8:09
  • This is perfect for my needs. Rather than a string literal, I had a variable I assigned from a text input. I'm using Number when the variable is initially assigned, and then it doesn't cause other things to be cast to strings. – DCShannon Mar 13 '15 at 22:50
4
divID = "question-" + parseInt(i+1,10);

check it here, it's a JSFiddle

| improve this answer | |
  • 6
    You dont need the parseInt, just the parens around the number. jsfiddle.net/J8rvy – Jamiec May 11 '11 at 8:00
  • 2
    +1, just had a lot of trouble with integers in my own project so I am using parseInt too much now hehe – rsplak May 11 '11 at 8:02
  • 2
    Never call parseInt with a number, only with a string. parseInt(1e100) === 1. – Oriol May 9 '16 at 17:37
0

Add brackets

divID = "question-" + (i+1);
| improve this answer | |
0

using braces surrounding the numbers will treat as addition instead of concat.

divID = "question-" + (i+1)
| improve this answer | |
0

The reason you get that is the order of precendence of the operators, and the fact that + is used to both concatenate strings as well as perform numeric addition.

In your case, the concatenation of "question-" and i is happening first giving the string "question=1". Then another string concatenation with "1" giving "question-11".

You just simply need to give the interpreter a hint as to what order of prec endence you want.

divID = "question-" + (i+1);
| improve this answer | |
0

Joachim Sauer's answer will work in scenarios like this. But there are some instances where adding parentheses won’t help.

For example: You are passing “sum of value of an input element and an integer” as an argument to a function.

arg1 = $("#elemId").val();   // value is treated as string
arg2 = 1;
someFuntion(arg1 + arg2);    // and so the values are merged here
someFuntion((arg1 + arg2));  // and here

You can make it work by using Number()

arg1 = Number($("#elemId").val());
arg2 = 1;
someFuntion(arg1 + arg2);

or

arg1 = $("#elemId").val();
arg2 = 1;
someFuntion(Number(arg1) + arg2);
| improve this answer | |
  • 1
    This answer doesn’t address the question. The question is about string + number + number where number + number should do addition before concatenating it to the string. It is not about string + number in general, where string is numeric and + should always do addition. – user4642212 Jul 3 at 3:10
0

Another alternative could be using:

divID = "question-" + (i - -1);

Subtracting a negative is the same as adding, and a minus cannot be used for concatenation

Edit: Forgot that brackets are still necessary since code is read from left to right.

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  • Forgot to add brackets. Works without parentheses in some cases but not all. – Zinger Jul 4 at 0:06
-1
var divID = "question-" + (parseInt(i)+1);

Use this + operator behave as concat that's why it showing 11.

| improve this answer | |
-1

Care must be taken that i is an integer type of variable. In javaScript we don't specify the datatype during declaration of variables, but our initialisation can guarantee that our variable is of a specific datatype.

It is a good practice to initialize variables of declaration:

  • In case of integers, var num = 0;
  • In case of strings, var str = "";

Even if your i variable is integer, + operator can perform concatenation instead of addition.

In your problem's case, you have supposed that i = 1, in order to get 2 in addition with 1 try using (i-1+2). Use of ()-parenthesis will not be necessary.

- (minus operator) cannot be misunderstood and you will not get unexpected result/s.

| improve this answer | |
  • How variables are initialized is irrelevant here. Parentheses are still needed; it’s the grouping operator that forces a specific operation precedence. Don’t do i - 1 + 2; use the Number function instead, if i isn’t a number. – user4642212 Jul 3 at 3:20
-2

One place the parentheses suggestion fails is if say both numbers are HTML input variables. Say a and b are variables and one receives their values as follows (I am no HTML expert but my son ran into this and there was no parentheses solution i.e.

  • HTML inputs were intended numerical values for variables a and b, so say the inputs were 2 and 3.
  • Following gave string concatenation outputs: a+b displayed 23; +a+b displayed 23; (a)+(b) displayed 23;
  • From suggestions above we tried successfully : Number(a)+Number(b) displayed 5; parseInt(a) + parseInt(b) displayed 5.

Thanks for the help just an FYI - was very confusing and I his Dad got yelled at 'that is was Blogger.com's fault" - no it's a feature of HTML input default combined with the 'addition' operator, when they occur together, the default left-justified interpretation of all and any input variable is that of a string, and hence the addition operator acts naturally in its dual / parallel role now as a concatenation operator since as you folks explained above it is left-justification type of interpretation protocol in Java and Java script thereafter. Very interesting fact. You folks offered up the solution, I am adding the detail for others who run into this.

| improve this answer | |
  • This answer doesn’t address the question. The question is about string + number + number where number + number should do addition before concatenating it to the string. It is not about string + number in general, where string is numeric and + should always do addition. <input type="number"> has valueAsNumber, so this isn’t specifically about HTML. praseInt should be called with the radix argument; Number is preferred. + isn’t the addition operator when it doesn’t do addition. – user4642212 Jul 3 at 3:16
-2

Simple as easy ... every input type if not defined in HTML is considered as string. Because of this the Plus "+" operator is concatenating.

Use parseInt(i) than the value of "i" will be casted to Integer.

Than the "+" operator will work like addition.

In your case do this :-

divID = "question-" + parseInt(i)+1;
| improve this answer | |
  • 1
    Never call parseInt with a number, only with a string. parseInt(1e100) === 1. – Oriol May 9 '16 at 17:41

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