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I was confusing about the pss column in /proc/pid/smaps,so I wrote a program to test it:

void sa();
int main(int argc,char *argv[])
{
    int fd;
    sa();
    sleep(1000);
}

void sa()
{
   char *pi=new char[1024*1024*10];
   for(int i=0;i<4;++i) {
        for(int j=0;j<1024*1024;++j){
                *pi='o';
                pi++;
        }
   }
   int cnt;
   for(int i=0;i<6;++i) {
        for(int j=0;j<1024*1024;++j){
                cnt+=*pi;
                pi++;
        }
   }
   printf("%d",cnt);
}



$cat /proc/`pidof testprogram`/smaps


08838000-0885b000 rw-p 00000000 00:00 0          [heap]

Size:                140 kB

Rss:                  12 kB

Pss:                  12 kB

Shared_Clean:          0 kB

Shared_Dirty:          0 kB

Private_Clean:         0 kB

Private_Dirty:        12 kB

Referenced:           12 kB

Swap:                  0 kB

KernelPageSize:        4 kB

MMUPageSize:           4 kB

b6dcd000-b77d0000 rw-p 00000000 00:00 0 

Size:              10252 kB

Rss:               10252 kB

Pss:                4108 kB

Shared_Clean:          0 kB

Shared_Dirty:          0 kB

Private_Clean:         0 kB

Private_Dirty:      4108 kB

Referenced:         4108 kB

Swap:                  0 kB

KernelPageSize:        4 kB

MMUPageSize:           4 kB

Here I found pss equal to Private_Dirty, but I wonder why.

BTW: is there any detail document for smaps?

Thanks

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1 Answer 1

up vote 15 down vote accepted

Quoting from lwn.net

The "proportional set size" (PSS) of a process is the count of pages it has in memory, where each page is divided by the number of processes sharing it. So if a process has 1000 pages all to itself, and 1000 shared with one other process, its PSS will be 1500

From Linux Kernel Documentation,

The /proc/PID/smaps is an extension based on maps, showing the memory consumption for each of the process's mappings. For each of mappings there is a series of lines such as the following:

08048000-080bc000 r-xp 00000000 03:02 13130      /bin/bash
Size:               1084 kB
Rss:                 892 kB
Pss:                 374 kB
Shared_Clean:        892 kB
Shared_Dirty:          0 kB
Private_Clean:         0 kB
Private_Dirty:         0 kB
Referenced:          892 kB
Anonymous:             0 kB
Swap:                  0 kB
KernelPageSize:        4 kB
MMUPageSize:           4 kB
Locked:              374 kB

The first of these lines shows the same information as is displayed for the mapping in /proc/PID/maps. The remaining lines show the size of the mapping (size), the amount of the mapping that is currently resident in RAM (RSS), the process' proportional share of this mapping (PSS), the number of clean and dirty private pages in the mapping. Note that even a page which is part of a MAP_SHARED mapping, but has only a single pte mapped, i.e. is currently used by only one process, is accounted as private and not as shared. "Referenced" indicates the amount of memory currently marked as referenced or accessed. "Anonymous" shows the amount of memory that does not belong to any file. Even a mapping associated with a file may contain anonymous pages: when MAP_PRIVATE and a page is modified, the file page is replaced by a private anonymous copy. "Swap" shows how much would-be-anonymous memory is also used, but out on swap.

This Question on Unix and Linux Stackexchange covers almost the topic. See Mat's excellent answer which will surely clear all your doubts.

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Why do I see many PSS, when I run the smaps on my binary. Here is the output of one of the binary -Locked:0 kB 77afd000-77afe000 r--p 00007000 00:0e 20581089 /lib/ld-uClibc-0.9.33.2.so. Do I need to add all the PSS to actually compute the size taken up by the binary. Is this size equal to the size occupied in the RAM? Size: 4 kB Rss: 4 kB Pss: 4 kB Private_Dirty: 4 kB Referenced: 4 kB Anonymous: 4 kB AnonHugePages: 0 kB 77ab2000-77ad6000 r-xp 00000000 00:0e 20711467 /usr/lib/libdbus-glib-1.so.2.2.0 Size: 144 kB Rss: 112 kB Pss: 12 kB –  dexterous_stranger Nov 14 '13 at 12:11

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