CPU_Usage is a very lightweight library that can be easily incorporated into your application for testing performance. The reading is given as a percentage of CPU time which can be output however you like (serial, tft.. etc).

Dependents:   nucleo_encoder_stepper mbed-os-rest-api-V1-1

. If you are looking to measure the overall CPU Usage, call the working() function at the start of your code, and just call update() any time that you want to read the CPU usage value. Easy as that!

If you want to measure the CPU usage of a particular algorithm, place the working() function call before the code, and place the stopped() function call at the end. This limits the measuring purely to the usage of that code. calling update() will then then give you the percentage result.

When creating a CPU_Usage object you pass in 2x arguments. the first is a timer object, and the second is a ballast number (in seconds) precise to a single precision float value. This number can be though of as a smoothing number, play with this number to suit your application.

Hot Tips!:

- Use the library's delay() function instead of the built in mbed wait() function, this will exclude wait time from the usage value.

- If putting the device to sleep, place the stopped() function beforehand, and call the working() function after waking. This will exclude sleep time from CPU usage. ( will work on this for future so it will be handled automatically).

The API is so simple It almost needs no introduction. But documentation will follow soon. In the mean time here are two demos to get you started:

General Use Sample Code (captures all CPU usage)

#include "mbed.h"
#include "CPU_Usage.h"

Serial pc(USBTX, USBRX);

Timer t;		                // create your timer object
CPU_Usage cpu(t, 1);	// create you CPU_Usage object

int main() {

   cpu.working();	// tell the CPU_Usage object that work has started
   uint8_t value = 0;

   while(1) {
                                        // HOT TIP!!!
       cpu.delay(0.25);	// use this in place of wait() to exclude waiting time from
			                // your usage value.

       value = cpu.update();	// retrieves the usage value

       pc.printf("CPU %i", value);	// send the value over serial.. if you want.
       }

}

Specific Code Section Sample Code (captures CPU usage only for the code between working() and stopped() )

#include "mbed.h"
#include "CPU_Usage.h"

Serial pc(USBTX, USBRX);

Timer t;
CPU_Usage cpu(t, 1);

// the code that you specifically want to measure
void function() {
    cpu.working();	// Tell the object work has started
    //
    // your awesome code here...
    //
    cpu.stopped();	// tell the object work has finished
}



int main() {

   uint8_t value = 0;

   while(1) {

       //
       // Do all your cool stuff,
       // calling function() when ever you want
       //

       value = cpu.update();           // retrieves the usage value

       pc.printf("CPU %i", value);   // send the value over serial.. if you want.

       }
}
Committer:
dextorslabs
Date:
Fri Jan 08 14:26:49 2016 +0000
Revision:
2:807947fd7dde
Parent:
0:d1e470a5f56e
Update of File headers

Who changed what in which revision?

UserRevisionLine numberNew contents of line
dextorslabs 0:d1e470a5f56e 1 /******************************************************
dextorslabs 2:807947fd7dde 2 CPU_Usage Library V1.0 Ian Weston 15.06.2014
dextorslabs 2:807947fd7dde 3 CPU_Usage Library V1.01 Ian Weston 08.01.2016
dextorslabs 0:d1e470a5f56e 4
dextorslabs 0:d1e470a5f56e 5 A very lightweight tool for calculating the CPU usage
dextorslabs 0:d1e470a5f56e 6 of the mbed micro. Based in the time domain, this will
dextorslabs 0:d1e470a5f56e 7 calculate the percentage of CPU time used.
dextorslabs 0:d1e470a5f56e 8
dextorslabs 0:d1e470a5f56e 9 Please see the project page for more details.
dextorslabs 0:d1e470a5f56e 10
dextorslabs 0:d1e470a5f56e 11 Enjoy!
dextorslabs 0:d1e470a5f56e 12
dextorslabs 0:d1e470a5f56e 13 ******************************************************/
dextorslabs 0:d1e470a5f56e 14
dextorslabs 0:d1e470a5f56e 15 #include "mbed.h"
dextorslabs 0:d1e470a5f56e 16
dextorslabs 0:d1e470a5f56e 17 #ifndef CPU_USAGE_H
dextorslabs 0:d1e470a5f56e 18 #define CPU_USAGE_H
dextorslabs 0:d1e470a5f56e 19
dextorslabs 0:d1e470a5f56e 20
dextorslabs 0:d1e470a5f56e 21 class CPU_Usage {
dextorslabs 0:d1e470a5f56e 22
dextorslabs 0:d1e470a5f56e 23 private:
dextorslabs 0:d1e470a5f56e 24
dextorslabs 0:d1e470a5f56e 25 // Declare Private variables ////
dextorslabs 0:d1e470a5f56e 26 Timer *_t;
dextorslabs 0:d1e470a5f56e 27 float _active;
dextorslabs 0:d1e470a5f56e 28 float _inactive;
dextorslabs 0:d1e470a5f56e 29 float _time_ballast;
dextorslabs 0:d1e470a5f56e 30
dextorslabs 0:d1e470a5f56e 31 public:
dextorslabs 0:d1e470a5f56e 32
dextorslabs 0:d1e470a5f56e 33 // Constructor //////////////////
dextorslabs 0:d1e470a5f56e 34 CPU_Usage( Timer &_t , float time_ballast);
dextorslabs 0:d1e470a5f56e 35
dextorslabs 0:d1e470a5f56e 36 // Class Function Prototypes ////
dextorslabs 0:d1e470a5f56e 37 void working (void);
dextorslabs 0:d1e470a5f56e 38 void stopped (void);
dextorslabs 0:d1e470a5f56e 39 uint8_t update (void);
dextorslabs 0:d1e470a5f56e 40 void delay (float duration);
dextorslabs 0:d1e470a5f56e 41
dextorslabs 0:d1e470a5f56e 42 // Destructor //////////////////
dextorslabs 0:d1e470a5f56e 43 ~CPU_Usage(void);
dextorslabs 0:d1e470a5f56e 44
dextorslabs 0:d1e470a5f56e 45 };
dextorslabs 0:d1e470a5f56e 46
dextorslabs 0:d1e470a5f56e 47
dextorslabs 0:d1e470a5f56e 48
dextorslabs 0:d1e470a5f56e 49 #endif