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I want shorten the if condition. How can I simplify this? Where step = 1 to 240 in min

I want 1st 3 min ON= 1, second 10 min OFF = 0, It will repeated until 248 min I wrote "if condition" which is consist of many condition. How to rewrite the code with simple expression

   #include "udf.h"
   DEFINE_PROFILE(ON_3min_OFF_10min_4Hr,thread,position) 
   {
   face_t f;
   real step,hf_3min,hf_10min;
   hf_3min = 1;     /*ON */
   hf_10min = 0;       /*OFF */
   step=N_TIME;
   begin_f_loop(f,thread)
   {
   
      if ((step<=3) || ((step>13) && (step<=16)) || ((step>26) && (step<=29)) || ((step>39) && (step<=42)) || ((step>52) && (step<=55)) || ((step>65) && (step<=68)) || ((step>78) && (step<=81)) || ((step>91) && (step<=94)) || ((step>104) && (step<=107)) || ((step>117) && (step<=120)) || ((step>130) && (step<=133)) || ((step>143) && (step<=146)) || ((step>156) && (step<=159)) || ((step>169) && (step<=172)) || ((step>182) && (step<=185)) || ((step>195) && (step<=198)) || ((step>208) && (step<=211)) || ((step>222) && (step<=225)) || ((step>235) && (step<=238)))
        {
          F_PROFILE(f,thread,position)=hf_3min;
        }
    else
        {
          F_PROFILE(f,thread,position)=hf_10min;
        }
   }
  end_f_loop(f,thread)
}
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  • 7
    Please choose C or C++, as the answers may very well be different. – Fred Larson Jul 16 '20 at 15:15
  • 1
    @ChaseRLewis: My thought was more like a std::vector of std::pair<int, int>, with each entry being one of the ranges. Similar idea. – Fred Larson Jul 16 '20 at 15:17
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    I would use a 2D-Array and iterate over it, because it is always of this type: (step >n1)&&(step <= n2) – JCWasmx86 Jul 16 '20 at 15:18
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    The first thing that would be important, is to explain what this condition tests. Is the ranges always 3 long? Are they always 10 apart (base on (step <= 211)) || ((step > 222) it is not)? – t.niese Jul 16 '20 at 15:20
  • 3
    This question is badly stated. You should describe what this code should do. If we know that we could solve it in many different more crafty ways. Also read about Magic Numbers. – Marek R Jul 16 '20 at 15:37
4

From the bounds that you are checking, it seems your code is equivalent to:

if ((step - 1) % 13 < 3) {
  F_PROFILE(f, thread, position) = hf;
} else {
  F_PROFILE(f, thread, position) = hf2;
}

You need to be careful about the missing lower bound on the first condition, and the change of the bounds at the last 2 conditions, in case that's intentional.

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  • At the ((step > 222) && (step <= 225)) and following it is shifted by, compared to the previous ranges. – t.niese Jul 16 '20 at 15:25
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    @t.niese Yes, you're right. My guess is that's actually a typo :p Possibly OP calculated the conditions by hand. – cigien Jul 16 '20 at 15:26
  • 3
    Another good reason not to write out massive expressions like this – Asteroids With Wings Jul 16 '20 at 15:26
  • 1
    I guess so too. That's why I asked the OP to explain the meaning of that expression ;) – t.niese Jul 16 '20 at 15:27
  • I don't think this is 'correct'. If I put 13 in there I'll get 1 <= 3 which is true when the original condition had a step > 13 not step >= 13. Only 0 is included in the original range, but like you said it's weird :/ so maybe 0 shouldn't be included and that's a bug. – Chase R Lewis Jul 16 '20 at 15:32

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