41

If I have an if statement that needs to meet these requirements:

if(cave > 0 && training > 0 && mobility > 0 && sleep > 0)

Is there any way to say that all of them are bigger than zero? Just for more efficient DRY code?

Something like:

if(cave, training, mobility, sleep > 0)
  • 3
    whats wrong with if (cave && training && mobility && sleep)? – Alex Aug 6 '15 at 12:27
  • 5
    @Alex if one of the values was 0 and another was 4 it'd pass your test (and fail OP's requirements). – James Donnelly Aug 6 '15 at 12:31
  • 36
    What's wrong with the original statement? 1. It's simple. 2. It's concise. 3. It's clear. 4. It does exactly what you want it to do. No other suggestion on this page can satisfy all those requirements. – Mohair Aug 6 '15 at 17:15
  • 13
    This thread is replete with over-engineered and cute code samples. There is nothing wrong with your if statement. If you have more than four conditions, I'd suggest using intermediary flags (valid_location && valid_status). – isanae Aug 6 '15 at 17:46
  • 7
    I don't see using && > 0 several times in an if statement once to be a violation of DRY. If you have to use that same set of conditions in multiple place, then place it in a function or in the prototype for that "class". Being clever will only make things more annoying to debug for others. – Travis J Aug 6 '15 at 19:31
46

You could get the lowest value with Math.min, and then you only need one check against the lower bound.

if(Math.min(cave, training, mobility, sleep) > 0) {
    //do something
}
  • 4
    This is clever, concise, and still clear. – Keen Aug 6 '15 at 15:20
  • 83
    This is why simple, clever, concise and clean code is not necessarily good code. Code is about intent. If I run into this, I'll have to spend time trying to figure out 1) what this code is doing, and 2) why it is written like this. In the end, I'll be pissed off, I'll revert your changes and I'll make sure you get mandatory code reviews for the next year. – isanae Aug 6 '15 at 17:33
  • 11
    @RilezG We parse if statements with simple conditions all the time, every day. It takes little to no effort. This is not an idiom. It has to be analyzed, understood and learned. And for what? – isanae Aug 6 '15 at 17:49
  • 7
    I see nothing wrong with your answer. Clever work indeed. Unreadable? A bit, but comparing to the ones using bitwise XOR, this is a piece of heaven – Ismael Miguel Aug 6 '15 at 18:11
  • 5
    @Ismael The comparison should be to the original code, not to the worst of the suggestions for modification. – Kyle Strand Aug 6 '15 at 21:06
34

You could use an array with .every. This is less DRY, but more verbose:

var isGreaterThanZero = function(val) {
    return val > 0;
};
if([cave, training, mobility, sleep].every(isGreaterThanZero)) {
    // Do Something
}

The reason I like this is that by using an array, it becomes apparent that you're repeating logic for every variable. Naming the callback in an obvious manner helps future readers understand exactly what that check will achieve. And finally, this gives scope for not just numbers, but any check of any type in the future - with any complexity hidden away from the if statement itself.

  • you could also use some – Alex Aug 6 '15 at 12:28
  • All the arrays in if statement must be the same type right? String or Integer and so on. – Altay Mazlum Aug 6 '15 at 12:29
  • this wont work for browsers using < ES5 – Alex Aug 6 '15 at 12:29
  • 1
    @Alex Polyfill is on the linked page. .@Altay Mazlum No. No type checking done here. That could be added in the helper function if required. – CodingIntrigue Aug 6 '15 at 12:31
  • This has the added benefit of permitting a function name with a more meaningful name, such as statPositive. It could even be modified slightly by wrapping the val > 0 function inside of another function that would take a list: if(allStatsPositive([cave, training, .... ])) would be very clear. – Kyle Strand Aug 7 '15 at 17:25
29

As some have stated there is nothing wrong in having multiple simple conditions in an if statement, however I would consider changing the formatting into:

if ( cave > 0
   && training > 0
   && mobility > 0
   && sleep > 0 )

Alternatively I would change the from using these variables as integers, into bool variables, i.e. isCave, hasTraining, or similar, and then set the proper bool closer to where your code defines the different properties (Edit: And possibly return early if it is false, to prevent further unneccessary calculations). This would simplify your if statement to the latter in the next code block, which in addition shows a variant which can be used if the conditions becomes slightly more complex or you would like to ease the reading of the if statement:

var isCave =  cave > 0; # What does cave > 0 mean?
var hasTraining = training > 0;
var isMobile = mobility > 0;
var isNotSleeping = sleep > 0; # What does sleep > 0 indicate? Unclear

if (isCave && hasTraining && isMobile && isNotSleeping ) {
   // Do your thing
}

In other words, the multiple conditions in your if statement is not your biggest code smell, I would shift my focus to giving your variables better names clearly indicating what the value indicates. This would improve reading and understanding of your code, way more than some strange syntax to avoid multiple if conditions.

8

There is nothing wrong with having multiple, simple conditions in an if statement. However, if it cannot fit into a single line (about 80 characters), you have a few solutions.

Ultimately, you are not checking whether four variables are greater than zero. You are checking for a set of conditions. The fact that these conditions are (currently) represented by signed integers is not only irrelevant, but is an implementation details that should be hidden away in functions.

  1. Use intermediary flags:

    var valid_location = false;
    if (cave > 0 && training > 0)
        valid_location = true;
    
    var valid_status = false;
    if (mobility > 0 && sleep > 0)
        valid_status = true;
    
    if (valid_location && valid_status)
        // ...
    
  2. Use a function:

    function can_do_this()
    {
        // split conditions into logical groups
    
        // checking location, because you need training if you're
        // in a cave
        if (cave <= 0 || training <= 0)
            return false;
    
        // checking status, because you have to be mobile and
        // sleepy
        if (mobility <= 0 || sleep <= 0)
            return false;
    
        return true;
    }
    
    if (can_do_this())
        // ...
    
  3. Use functions for the individual conditions you need to check:

    function valid_location()
    {
        return (cave > 0 && training > 0);
    }
    
    function valid_status()
    {
        return (mobility > 0 && sleep > 0);
    }
    
    if (valid_location() && valid_status())
        // ...
    
  • 1
    Please make that a simple var valid_status = (mobility > 0 && sleep > 0); – Bergi Aug 6 '15 at 21:22
  • @Bergi I had actually written something, which I edited out. I figured people would understand that a boolean expression could be used, unless it's too hard to read or it has too many conditions. Experienced programmers would know that, and I wouldn't want novices to think cramming all that in one line is a good thing. So no, I probably won't change it. – isanae Aug 6 '15 at 21:32
  • 1
    What do you mean by "cramming all that in one line"? Hardly matters whether the expression is in an assignment or an if condition, it's still "one line". Using if/else to set boolean variables is just a bad practise, especially for novice programmers. – Bergi Aug 6 '15 at 21:39
  • @Bergi This question is about having lots of flags to test. I don't like having lots of stuff on the right side of an assignment. I prefer having it in an if statement. I was afraid that by using an expression to initialize the flag, I would implicitly say that complex expressions on the right side is good. – isanae Aug 6 '15 at 21:52
  • 1
    I don't say that you should use a complex expression. I just say that when splitting them up (which is a proper solution to the problem), like you've done in your first snippet, you shouldn't put the parts in if statements that conditionally initialise helper flags - you should assign the helper flags directly. – Bergi Aug 6 '15 at 21:55
4

Sounds like a job for a "validator" function like this:

function areAllGreaterThanZero(){
    //TODO: check inputs
    var result = true;
    [].splice.apply(arguments).forEach(function(x){ 
        result = result && (x > 0); 
    });
    return result;
}

if(areAllGreaterThanZero(cave, training, mobility, sleep)) {
    // ...
}
4

As others have suggested, you can use .every if you don't mind using ES6 or polyfills:

var hasAllStats = [cave, training, mobility, sleep]
  .every(function(stat) { return stat > 0; });

if (hasAllStats) { }

Alternatively, you can use .some to get the inverse (Also requires ES6 or polyfill):

var isMissingStats = [cave, training, mobility, sleep]
  .some(function(stat) { return stat <= 0; });

if (!isMissingStats) { }

If you don't want to use ES6, you can use reduce:

var hasAllStats = [cave, training, mobility, sleep]
  .reduce(function(hasAllStats, stat) {
    return hasAllStats && stat > 0;
  }, true);

if (hasAllStats) { }
  • This will miss numbers between 0 and 1. – Keen Aug 6 '15 at 15:22
  • This better matches the rules given: .reduce(function(memo, stat) { return memo && stat > 0; }, true) – Keen Aug 6 '15 at 15:23
  • @Keen Good call. – rrowland Aug 6 '15 at 15:26
4

Assuming 32-bit ints.

if ((cave | training | mobility | sleep) > 0)

If any of the above numbers are negative, the result of the OR will be negative and the requirements aren't met.

Edit: that's equivalent to if(cave >= 0 && training >= 0 && mobility >= 0 && sleep >= 0) and won't when some of the parameters are 0. The fix is to invert the sign bit:

if ((~cave | ~training | ~mobility | ~sleep) <= 0)

Some alternative ways which work even for floating-point values

if (cave*training*mobility*sleep > 0)
if (Math.sign(cave) * Math.sign(training) * Math.sign(mobility) * Math.sign(sleep) > 0)
if (Math.sign(cave) | Math.sign(training) | Math.sign(mobility) | Math.sign(sleep) > 0)
  • 4
    If cave equals 0 and the rest of the variables are positive, then the result of the OR statement will be positive. But this is not the desired result; it returns the opposite result from the OP's code. – mathmandan Aug 6 '15 at 14:11
  • 34
    Write code for people first, machines second. I guarantee I'd be okay with seeing if(cave > 0 && training > 0 && mobility > 0 && sleep > 0) in our codebase, but anything clever like if ((cave | training | mobility | sleep) > 0) will annoy me because I won't know if it really does what you intended. It doesn't matter that I can work out what it does if I can't tell what you meant. Save cleverness for solving problems, not creating them. – Keen Aug 6 '15 at 14:28
  • 1
    @RemarkLima: If they are all negative then multiplying them will result in a non-zero and positive answer. – Chris Aug 6 '15 at 14:54
  • 5
    This isn't guaranteed to work with non integers. 0.2|0.5|0.6|0.9 is zero. – GOTO 0 Aug 6 '15 at 19:42
  • 2
    @LưuVĩnhPhúc My previous comment is a warning to the OP (and to anyone else considering unreadable solutions). It is a warning against requesting code like this in the first place. Your answer was the type of thing requested, and it was an example of a brilliant solution that unfortunately misses edge cases and confuses readers, so I raised the concern here. Sorry I did not make it clear whom I was addressing. – Keen Aug 7 '15 at 14:01
2

Filter it with lodash:

var data = [cave, training, mobility, sleep];
var result = _.filter(data, function (datum) { return datum > 0; }).length === data.length;

console.log(result);

It iterates over array elements and returns new array composed of those elements that meet given requirement of being > 0 - if result array is different size than given one it means one or more of it's elements were not > 0.

I wrote it specifically to check every array value (even if not necessary as first > 0 could give same result) to not stop on first positive as you stated you want to check all of them.

PS You can reverse it to check for <= 0 and check for .length === 0 instaed to be faster.

1

Why you are looking for solution?

Your question looks like best and simple answer, i recommend it. We have multiple solutions for this. Below one is that.

JSBin for .every()

Achieve it by using .every function

var flag = [cave, training, mobility, sleep].every(function(val) {
     return val > 0;
  });

if(flag) {
  alert('All the elements are greater than Zero');
}
  • 1
    add how this would look in the if statement – Alex Aug 6 '15 at 12:34
  • This will return true if any (not all) of the values are over zero. – rrowland Aug 6 '15 at 15:06
  • If you go for ES5, you want .every(), not .some() (as mentioned in the top answer by RGraham) – D_4_ni Aug 6 '15 at 15:38
  • 1
    @Alex put it in fuction – Szymon Toda Aug 7 '15 at 15:06

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