a = b – Talk

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== Language construct ==
== Language construct ==
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The assignment operator is the only operator that isn't really an operator. It is a special construct.<br>
The assignment operator is the only operator that isn't really an operator. It is a special construct.<br>
Take for example, the following expression:
Take for example, the following expression:
<code>hello + 5</code>
<code style="display: block">hello + 5</code>
Assuming ''hello'' contained the value ''10'', ''hello'' would evaluate to ''10'', and ''10 + 5'' would finally evaluate to ''15''.<br>
Assuming ''hello'' contained the value ''10'', ''hello'' would evaluate to ''10'', and ''10 + 5'' would finally evaluate to ''15''.<br>
<br>
<br>
Which is why the assignment operator wouldn't work as a regular operator.<br>
Which is why the assignment operator wouldn't work as a regular operator.<br>
Take for example, the following expression:
Take for example, the following expression:
<code>hello &#61; 10</code>
<code style="display: block">hello &#61; 10</code>
If the assignment operator was a regular operator, ''hello'' would first evaluate to ''[[nil]]'' and finally ''nil &#61; 10'', which wouldn't make a whole lot of sense.<br>
If the assignment operator was a regular operator, ''hello'' would first evaluate to ''[[nil]]'' and finally ''nil &#61; 10'', which wouldn't make a whole lot of sense.<br>
<br>
<br>
To work as a regular operator, and like any other operator requiring a reference to a variable rather than the variable's value (Eg. [[isNil]] and [[publicVariable]]), its syntax would have had to be.
To work as a regular operator, and like any other operator requiring a reference to a variable rather than the variable's value (Eg. [[isNil]] and [[publicVariable]]), its syntax would have had to be.
<code>"hello" &#61; 5</code><br>
<code style="display: block">"hello" &#61; 5</code><br>
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:*[[for_var|for var]]
:*[[for_var|for var]]
:These operators all take a string representing the name of the variable, because if the syntax of ''[[isNil]]'' was:
:These operators all take a string representing the name of the variable, because if the syntax of ''[[isNil]]'' was:
<code>var1 = 42;
<code style="display: block">var1 = 42;
'''isNil var1;'''</code>
'''isNil var1;'''</code>
:Then var1 would evaluate to ''42'', and the function responsible for the ''[[isNil]]'' operator would receive ''42'' as the argument, while it needed a '''reference''' to the variable; just like the [[a_plus_b|+]] operator with ''var1 + var1'', would receive ''42'' and ''42'' as arguments, and not a reference to the variables.
:Then var1 would evaluate to ''42'', and the function responsible for the ''[[isNil]]'' operator would receive ''42'' as the argument, while it needed a '''reference''' to the variable; just like the [[+]] operator with ''var1 + var1'', would receive ''42'' and ''42'' as arguments, and not a reference to the variables.
:Therefore, the operators take a string containing the name, so the functions responsible for the operators can get a reference to the variable.
:Therefore, the operators take a string containing the name, so the functions responsible for the operators can get a reference to the variable.
:The same would apply if they were to make a binary operator that needed to reference a variable, and not its value.
:The same would apply if they were to make a binary operator that needed to reference a variable, and not its value.
:And thus the [[&#61;]] operator would need to have the syntax [[String|STRING]] [[&#61;]] [[Anything]].
:And thus the [[&#61;]] operator would need to have the syntax [[String|STRING]] [[&#61;]] [[Anything]].
:Which is the reason, I assume, they chose to make the [[&#61;]] 'operator' a [http://en.wikipedia.org/wiki/Language_construct language construct], rather than a regular operator, to remove the need to enclose all the variable names in quotes.
:Which is the reason, I assume, they chose to make the [[&#61;]] 'operator' a {{Link|https://en.wikipedia.org/wiki/Language_construct|language construct}}, rather than a regular operator, to remove the need to enclose all the variable names in quotes.
:— [[User:MulleDK13|MulleDK13]] ([[User talk:MulleDK13|talk]]) 02:52, 6 October 2014 (CEST)
:— [[User:MulleDK13|MulleDK13]] ([[User talk:MulleDK13|talk]]) 02:52, 6 October 2014 (CEST)
::Join the BIKI skype chat http://forums.bistudio.com/showthread.php?131825-Skype-groups-amp-other-contact-groups Most of the active users are here --[[User:Benargee|Benargee]] ([[User talk:Benargee|talk]]) 03:45, 6 October 2014 (CEST)<br>
::Join the BIKI skype chat http://forums.bistudio.com/showthread.php?131825-Skype-groups-amp-other-contact-groups Most of the active users are here --[[User:Benargee|Benargee]] ([[User talk:Benargee|talk]]) 03:45, 6 October 2014 (CEST)<br>
:::::P.S. you might have to join, leave then join again for it to work properly--Benargee
:::::P.S. you might have to join, leave then join again for it to work properly--Benargee
::This makes much more sense. As I pointed in skype chat, = should not even be in commands category as it is not a command, but a punctuation, just like ;:":)({} etc. --KK
::This makes much more sense. As I pointed in skype chat, = should not even be in commands category as it is not a command, but a punctuation, just like ;:":)({} etc. --KK

Latest revision as of 22:11, 23 February 2023

I thought "Equals a to b" is clearer, as it shows that it is an active process, as "a equals b" sounds more like a comparison. But I'm neither a native speaker nor is this command that unclear ;) --raedor 17:51, 16 December 2006 (CET)

How about this one: Assigns content of b to variable a.. That should be pretty obvious to anybody, what it means. --Kronzky 18:08, 16 December 2006 (CET)
I think planck confused a = b and a == b. I agree with Kronzky, the new definition is much more clearer. --Sniperwolf572 18:16, 16 December 2006 (CET)
I can live with that one. :) --raedor 19:27, 16 December 2006 (CET)
No, Planck didn't confuse this with a == b, I was just at a loss as to where this command comes from as it isn't really in the comref. Anyway the latest definition is fine. Planck 22:43, 16 December 2006 (CET)

Note that array1=array2; array2=[1,2,3]; makes array1=[1,2,3] as well since it's more like a "pointer", not a copy of. array1=+array2 *is* a copy. Confused? :) --Doolittle 18:44, 8 July 2007 (CEST)

Array operations are actually covered in the Array article. --Kronzky 22:54, 8 July 2007 (CEST)

b:Anything ?

If b is Anything it could also be Nothing, which in turn cannot be assigned to a variable. --alef 11:46, 19 June 2008 (CEST)

Language construct

Posted on October 3, 2014 - 18:38 (UTC)
MulleDK13
The assignment operator is the only operator that isn't really an operator. It is a special construct.
Take for example, the following expression: hello + 5 Assuming hello contained the value 10, hello would evaluate to 10, and 10 + 5 would finally evaluate to 15.

Which is why the assignment operator wouldn't work as a regular operator.
Take for example, the following expression: hello = 10 If the assignment operator was a regular operator, hello would first evaluate to nil and finally nil = 10, which wouldn't make a whole lot of sense.

To work as a regular operator, and like any other operator requiring a reference to a variable rather than the variable's value (Eg. isNil and publicVariable), its syntax would have had to be. "hello" = 5



@MulleDK13 I have really difficult time understanding what you are trying to say, this is why I moved it here. Are you saying that a = 10; b = a; a = 5; b will have to be also 5? --KK

No, that's not what I'm saying, at all. What I'm saying is, that if an operator needs the variable itself and not its value, it must take a string with its name, case in point:
These operators all take a string representing the name of the variable, because if the syntax of isNil was:

var1 = 42; isNil var1;

Then var1 would evaluate to 42, and the function responsible for the isNil operator would receive 42 as the argument, while it needed a reference to the variable; just like the + operator with var1 + var1, would receive 42 and 42 as arguments, and not a reference to the variables.
Therefore, the operators take a string containing the name, so the functions responsible for the operators can get a reference to the variable.
The same would apply if they were to make a binary operator that needed to reference a variable, and not its value.
And thus the = operator would need to have the syntax STRING = Anything.
Which is the reason, I assume, they chose to make the = 'operator' a language construct, rather than a regular operator, to remove the need to enclose all the variable names in quotes.
MulleDK13 (talk) 02:52, 6 October 2014 (CEST)
Join the BIKI skype chat http://forums.bistudio.com/showthread.php?131825-Skype-groups-amp-other-contact-groups Most of the active users are here --Benargee (talk) 03:45, 6 October 2014 (CEST)
P.S. you might have to join, leave then join again for it to work properly--Benargee
This makes much more sense. As I pointed in skype chat, = should not even be in commands category as it is not a command, but a punctuation, just like ;:":)({} etc. --KK