50
while (temp->left->oper == '+' || 
       temp->left->oper == '-' || 
       temp->left->oper == '*' || 
       temp->left->oper == '/' || 
       temp->right->oper == '+' || 
       temp->right->oper == '-' || 
       temp->right->oper == '*' || 
       temp->right->oper == '/') {
    // do something
}

For clarity: temp is a pointer that points to this structure:

struct node
{
    int num;
    char oper;
    node* left;
    node* right;
};
  • 1
    Without knowing about the dependencies between temp->left and temp->right you cannot optimize within all equal operators. Optically you could use regular expressions, but internally, it's probably much the same or even less efficient. – U. Windl Jul 24 at 0:53
  • 2
    I'd be interested to know why you think you have this problem. It smacks of runtime interpretation of an expression tree, and if so there are much better ways to do it – user207421 Jul 24 at 9:59

10 Answers 10

57

Sure, you could just use a string of valid operators and search it.

#include <cstring>

// : :

const char* ops = "+-*/";
while(strchr(ops, temp->left->oper) || strchr(ops, temp->right->oper))
{
     // do something
}

If you are concerned about performance, then maybe table lookups:

#include <climits>

// : :

// Start with a table initialized to all zeroes.
char is_op[1 << CHAR_BIT] = {0};

// Build the table any way you please.  This way using a string is handy.
const char* ops = "+-*/";
for (const char* op = ops; *op; op++) is_op[*op] = 1;

// Then tests require no searching
while(is_op[temp->left->oper] || is_op[temp->right->oper])
{
     // do something
}
  • 14
    Have to be slightly careful with strchr because (it's a little known fact) that this will also be true if either temp->left->oper or temp->right->oper is equal to '\0'. But in practice this is probably a good solution. – john Jul 23 at 5:52
  • 3
    You probably want to extract the implementation into a separate function. – L. F. Jul 23 at 10:04
  • 9
    Is there a reason to use strchr over an std::string with .find() here? – scohe001 Jul 23 at 14:40
  • 1
    Yes, the OP's goal was to shorten the loop condition. Using ops.find(temp->left->oper) != std::string::npos was not as short as using strchr. But of course, as pointed out in the comments, the behavior of strchr is different in the case of searching for \0 so using it might also be considered a latent bug or an actual bug, depending on the inputs. – paddy Jul 24 at 1:29
  • 3
    @paddy I don't think he was looking for a golfed answer! just one that avoids the long chain of || statements. – Baldrickk Jul 24 at 12:37
34

Yes, indeed you can!

Store the valid-characters to a std::array or even a plain array and apply the standard algorithm std::any_of to it for checking the condition.

#include <array>     // std::array
#include <algorithm> // std::any_of

const std::array<char, 4> options{ '+', '-', '*', '/' };
const auto tester = [&temp](char c) { return temp->left->oper == c || temp->right->oper == c; };
const bool isValid = std::any_of(options.cbegin(), options.cend(), tester);

while(isValid) // now the while-loop is simplified to
{
    // do something
}

This can be more cleaned by packing into a function, which accepts the node object to be checked.

#include <array>     // std::array
#include <algorithm> // std::any_of

bool isValid(const node& temp)
{
    static constexpr std::array<char, 4> options{ '+', '-', '*', '/' };
    const auto tester = [&temp](char c) { return temp->left->oper == c || temp->right->oper == c; };
    return std::any_of(options.cbegin(), options.cend(), tester);
}

which can be called in the while-loop

while (isValid(temp)) // pass the node to be checked
{
    // do something
}
  • 3
    Shouldn't it be std::any_of instead of std::all_of ? – Vishaal Shankar Jul 23 at 5:52
  • 1
    @displayName tester also could be const and the rhythm of const could have bee maintained. – JeJo Jul 23 at 17:49
  • @JeJo: Wanted to do that but I wasn't sure. C++ noob here. – displayName Jul 23 at 17:52
28

Create a sub function,

bool is_arithmetic_char(char)
{
// Your implementation or one proposed in another answers.
}

and then:

while (is_arithmetic_char(temp->left->oper)
    || is_arithmetic_char(temp->right->oper))
{
    // do something
}
  • 1
    As a note, such a function could also be added to node, or part of a class that inherits from node without adding any new data members, without breaking its standard-layoutness. – Justin Time Jul 23 at 18:22
  • 1
    I'm never convinced by that sort of "micro-refactorization." All it does is move any bugs in the code from where you can see them in the context they are used in, to some place where you can't. Of course if the same test occurs in other places in the app, that is a good reason for factoring it out. – alephzero Jul 23 at 23:30
  • 1
    @alephzero I would prefer these kind of sub function in this case as (1) they abstract a possibly changing definition if you want to add operators later (2) they provide a small testable interface (3) they can be documented in the header file. – WorldSEnder Jul 24 at 1:32
  • 5
    @alephzero: Watch the talk The deep synergy between testability and good design, if you haven’t. It may give you another perspective. – displayName Jul 24 at 3:37
  • @alephzero: If it is only the only place where it is used (twice) and you don't want to expose it, you might still create lambda. – Jarod42 Jul 24 at 16:18
14

C-style:

int cont = 1;
while(cont)
    switch(temp->left->oper) {
    case '+':
    case '-':
    ...
    case '/':
        // Do something
        break;
    default:
        cont = 0;
    }

You might need to enclose // Do something with curly braces if you're going to declare variables.

  • 7
    This isn't just "C-style". There are very good reasons to prefer doing this for this exact situation, as the compiler is able to construct a jump table much more efficiently than a mess of (theoretically) unrelated if checks. Even if it can't do that, "I'm comparing a mess of different constants to the same variable" is good information to give the compiler that can help it optimize much better. – T.E.D. Jul 23 at 22:30
  • 2
    It would be even better to change the condition to while (1); change the first break to continue; change the default case to break; and add another break after the switch. I've used this pattern many times in interpreters. – user207421 Jul 24 at 8:24
  • @T.E.D. I'm skeptical of your premise. A switch case with a bunch of cascading cases isn't any different than if statements with disjunctive conditions (ORed together). Humans might not recognize that visually, but I would be surprised if compilers didn't support the two equally. – Alexander Jul 25 at 5:43
  • 2
  • @MCCCS Interesting, thanks for providing that. This bugs me a lot to see. It seems to me that switch and if/else if/else are isomorphic (in the special case where all predicates are checking against a single "switched" value), and that empty cascading case bodies are the same as OR conditions on predicates. Why doesn't the compiler see that :| – Alexander Jul 25 at 15:27
6

You can construct a string that contains the options and search for the character:

#include <string>

// ...

for (auto ops = "+-*/"s; ops.find(temp-> left->oper) != std::string::npos ||
                         ops.find(temp->right->oper) != std::string::npos;)
    /* ... */;

The "+-*/"s is a C++14 feature. Use std::string ops = "+-*/"; before C++14.

5

Programming is the process of finding redundancies and eliminating them.

struct node {
    int num;
    char oper;
    node* left;
    node* right;
};

while (temp->left->oper == '+' || 
       temp->left->oper == '-' || 
       temp->left->oper == '*' || 
       temp->left->oper == '/' || 
       temp->right->oper == '+' || 
       temp->right->oper == '-' || 
       temp->right->oper == '*' || 
       temp->right->oper == '/') {
    // do something
}

What's the "repeated unit" here? Well, I see two instances of

   (something)->oper == '+' || 
   (something)->oper == '-' || 
   (something)->oper == '*' || 
   (something)->oper == '/'

So let's factor that repeated part out into a function, so that we only have to write it once.

struct node {
    int num;
    char oper;
    node* left;
    node* right;

    bool oper_is_arithmetic() const {
        return this->oper == '+' || 
               this->oper == '-' || 
               this->oper == '*' || 
               this->oper == '/';
    }
};

while (temp->left->oper_is_arithmetic() ||
       temp->right->oper_is_arithmetic()) {
    // do something
}

Ta-da! Shortened!
(Original code: 17 lines, 8 of which are the loop condition. Revised code: 18 lines, 2 of which are the loop condition.)

  • I'm not to familiar with modern C++, but isn't there a nice simple way of saying something like ['+', '-', '*', '/'].contains(this->oper)? – Alexander Jul 25 at 5:40
  • 1
    @Alexander: Nope. If you really wanted to shorten oper_is_arithmetic() further, you could write return "+-*/"s.find(this->oper) != std::string::npos; — but that Perl-style soup is much less readable than just using plain old this->oper == '+' || .... – Quuxplusone Jul 25 at 6:03
  • Gah, there's a few APIs in the iOS world that use this pattern. Rather than having a method on String like func contains(substring: String) -> Bool, there's func range(of: String) -> NSRange, which returns the range of indices containing the matched substring, or a sentinel value if none is found (NSNotFound, akin to std::string::npos). I hate this pattern so much, is it really so hard to just add one extra function that returns a simple boolean? – Alexander Jul 25 at 15:23
3

"+" "-" "*" and "/" are ASCII decimal values 42, 43, 45 and 47 thus

#define IS_OPER(x) (x > 41 && x < 48 && x != 44 && x != 46)

while(IS_OPER(temp->left->oper || IS_OPER(temp->right->oper){ /* do something */ }
  • 2
    I would recommend making this a helper function rather than a macro, personally. And probably also documenting what it does, in case future maintainers aren't familiar with ASCII code points. – Justin Time Jul 23 at 17:10
  • 8
    You can write symbols directly as '+'. There is no need to remember any of those ASCII codes. – HolyBlackCat Jul 23 at 18:18
  • 2
    I believe using ASCII codes might be better in this particular case, @HolyBlackCat, due to the use of range testing instead of direct comparison; x > 41 is more readable than x > ')', and x < '0' is bound to catch at least a few people by surprise. (Although, in this case, it should note the usage of ASCII code points, and that it's thus only compatible with ASCII systems.) – Justin Time Jul 23 at 23:37
  • 2
    That said, I honestly do like the idea behind this one, since it's a type of micro-optimisation that I don't believe compilers frequently do. ...Although, if optimising for performance is a concern, it may be best to start with x < 48, to maximise the number of short-circuits from the leftmost comparison. – Justin Time Jul 23 at 23:43
  • 3
    I think this is a pretty good idea even if the implementation is a bit buggy. the ASCII table order is designed to facilitate this kind of use. and this will probably perform much better if the condition is usually false since most letters will fail by the second check. if OP decides to support parentheses, then this could even be done with a bitmask – sudo rm -rf slash Jul 25 at 7:06
3

Trading space against time, you could build two "Boolean" arrays indexed by temp->left->oper and temp->left->oper, respectively. The corresponding array contains true when the condition is met, false otherwise. So:

while (array1[temp->left->oper] || array1[temp->right->oper]) {
// do something
}

As the sets for left and right seem identical, one array will actually do.

Initialization would be like this:

static char array1[256]; // initialized to "all false"

...

array1['+'] = array1['-'] = array1['*'] = array1['/'] = '\001';

Similar for array2. As jumps are bad for modern pipelining CPUs, you could even use a larger table like this:

while (array1[temp->left->oper << 8 | temp->right->oper]) {
    // do something
}

But initialization is more tricky:

static char array1[256 * 256]; // initialized to "all false"

...

void init(char c) {
    for (unsigned char i = 0; i <= 255; ++i) {
        array1[(c << 8) | i] = array1[(i << 8) | c] = '\001';
    }
}

init('+');
init('-');
init('*');
init('/');
  • You also have to cast char index to unsigned char to avoid possible out of bound access when char is signed and negative. – Jarod42 Jul 25 at 1:12
  • @Jarod42: It's long time since I programmed C++, so I just wrote it from my head. Feel free to suggest edit changed (e.e.: edit!). – U. Windl Jul 26 at 0:18
3

Regex to the rescue!

#include <regex>

while (
    std::regex_match(temp->left->oper, std::regex("[\+\-\*\/]")) ||
    std::regex_match(temp->right->oper, std::regex("[\+\-\*\/]"))
) { 
// do something
}

EXPLANATION: Regex brackets [] denote a regex "character class." This means "match any character listed inside the brackets." For example, g[eiou]t would match "get," "git," "got," and "gut," but NOT "gat." The backslashes are needed because plus (+) minus (-) and star (*) and forward-slash (/) have meaning within a character class.

DISCLAIMER: I don't have time to run this code; you might have to tweak it, but you get the idea. You might have to declare/convert oper from a char to a std::string.

REFERENCES
1. http://www.cplusplus.com/reference/regex/regex_match/
2. https://www.rexegg.com/regex-quickstart.html
3. https://www.amazon.com/Mastering-Regular-Expressions-Jeffrey-Friedl/dp/0596528124/ref=sr_1_1?keywords=regex&qid=1563904113&s=gateway&sr=8-1

  • 8
    This is quite inefficient, as the std::regex object is constructed up to twice per loop iteration, and the regex expression needs to be compiled repeatedly. Extracting it as a constant would already help. – TheOperator Jul 23 at 19:01
2

Putting the operators in the unordered_set will be lot efficient and will provide O(1) access to operators.

unordered_set<char> u_set;                                                                                                                                                   
u_set.insert('+');                                                                                                                                                           
u_set.insert('*');                                                                                                                                                           
u_set.insert('/');                                                                                                                                                           
u_set.insert('-');                                                                                                                                                           


if((u_set.find(temp->left->oper) != u_set.end()) || (u_set.find(temp->right->oper) != u_set.end())) {     
                 //do something                                                                                                                
}
  • In this case, O(1) will be way slower than O(n). – L. F. Aug 19 at 15:49
  • Could you please explain it a little a bit. – Spartan Aug 20 at 17:39
  • 1
    The O-notation is an asymptotic notation, meaning the constants are "absorbed." In this case, the overhead of unordered_set will significant dominate the cost of linear searching over 4 characters. – L. F. Aug 20 at 17:41

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