ProcessList.java revision 6466126ab0ac219229dfa3f5396cc03e9338b03b
1/*
2 * Copyright (C) 2011 The Android Open Source Project
3 *
4 * Licensed under the Apache License, Version 2.0 (the "License");
5 * you may not use this file except in compliance with the License.
6 * You may obtain a copy of the License at
7 *
8 *      http://www.apache.org/licenses/LICENSE-2.0
9 *
10 * Unless required by applicable law or agreed to in writing, software
11 * distributed under the License is distributed on an "AS IS" BASIS,
12 * WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
13 * See the License for the specific language governing permissions and
14 * limitations under the License.
15 */
16
17package com.android.server.am;
18
19import java.io.IOException;
20import java.io.OutputStream;
21import java.nio.ByteBuffer;
22
23import android.app.ActivityManager;
24import android.os.Build;
25import android.os.SystemClock;
26import com.android.internal.util.MemInfoReader;
27import com.android.server.wm.WindowManagerService;
28
29import android.content.res.Resources;
30import android.graphics.Point;
31import android.os.SystemProperties;
32import android.net.LocalSocketAddress;
33import android.net.LocalSocket;
34import android.util.Slog;
35import android.view.Display;
36
37/**
38 * Activity manager code dealing with processes.
39 */
40final class ProcessList {
41    // The minimum time we allow between crashes, for us to consider this
42    // application to be bad and stop and its services and reject broadcasts.
43    static final int MIN_CRASH_INTERVAL = 60*1000;
44
45    // OOM adjustments for processes in various states:
46
47    // Adjustment used in certain places where we don't know it yet.
48    // (Generally this is something that is going to be cached, but we
49    // don't know the exact value in the cached range to assign yet.)
50    static final int UNKNOWN_ADJ = 16;
51
52    // This is a process only hosting activities that are not visible,
53    // so it can be killed without any disruption.
54    static final int CACHED_APP_MAX_ADJ = 15;
55    static final int CACHED_APP_MIN_ADJ = 9;
56
57    // The B list of SERVICE_ADJ -- these are the old and decrepit
58    // services that aren't as shiny and interesting as the ones in the A list.
59    static final int SERVICE_B_ADJ = 8;
60
61    // This is the process of the previous application that the user was in.
62    // This process is kept above other things, because it is very common to
63    // switch back to the previous app.  This is important both for recent
64    // task switch (toggling between the two top recent apps) as well as normal
65    // UI flow such as clicking on a URI in the e-mail app to view in the browser,
66    // and then pressing back to return to e-mail.
67    static final int PREVIOUS_APP_ADJ = 7;
68
69    // This is a process holding the home application -- we want to try
70    // avoiding killing it, even if it would normally be in the background,
71    // because the user interacts with it so much.
72    static final int HOME_APP_ADJ = 6;
73
74    // This is a process holding an application service -- killing it will not
75    // have much of an impact as far as the user is concerned.
76    static final int SERVICE_ADJ = 5;
77
78    // This is a process with a heavy-weight application.  It is in the
79    // background, but we want to try to avoid killing it.  Value set in
80    // system/rootdir/init.rc on startup.
81    static final int HEAVY_WEIGHT_APP_ADJ = 4;
82
83    // This is a process currently hosting a backup operation.  Killing it
84    // is not entirely fatal but is generally a bad idea.
85    static final int BACKUP_APP_ADJ = 3;
86
87    // This is a process only hosting components that are perceptible to the
88    // user, and we really want to avoid killing them, but they are not
89    // immediately visible. An example is background music playback.
90    static final int PERCEPTIBLE_APP_ADJ = 2;
91
92    // This is a process only hosting activities that are visible to the
93    // user, so we'd prefer they don't disappear.
94    static final int VISIBLE_APP_ADJ = 1;
95
96    // This is the process running the current foreground app.  We'd really
97    // rather not kill it!
98    static final int FOREGROUND_APP_ADJ = 0;
99
100    // This is a process that the system or a persistent process has bound to,
101    // and indicated it is important.
102    static final int PERSISTENT_SERVICE_ADJ = -11;
103
104    // This is a system persistent process, such as telephony.  Definitely
105    // don't want to kill it, but doing so is not completely fatal.
106    static final int PERSISTENT_PROC_ADJ = -12;
107
108    // The system process runs at the default adjustment.
109    static final int SYSTEM_ADJ = -16;
110
111    // Special code for native processes that are not being managed by the system (so
112    // don't have an oom adj assigned by the system).
113    static final int NATIVE_ADJ = -17;
114
115    // Memory pages are 4K.
116    static final int PAGE_SIZE = 4*1024;
117
118    // The minimum number of cached apps we want to be able to keep around,
119    // without empty apps being able to push them out of memory.
120    static final int MIN_CACHED_APPS = 2;
121
122    // The maximum number of cached processes we will keep around before killing them.
123    // NOTE: this constant is *only* a control to not let us go too crazy with
124    // keeping around processes on devices with large amounts of RAM.  For devices that
125    // are tighter on RAM, the out of memory killer is responsible for killing background
126    // processes as RAM is needed, and we should *never* be relying on this limit to
127    // kill them.  Also note that this limit only applies to cached background processes;
128    // we have no limit on the number of service, visible, foreground, or other such
129    // processes and the number of those processes does not count against the cached
130    // process limit.
131    static final int MAX_CACHED_APPS = 32;
132
133    // We allow empty processes to stick around for at most 30 minutes.
134    static final long MAX_EMPTY_TIME = 30*60*1000;
135
136    // The maximum number of empty app processes we will let sit around.
137    private static final int MAX_EMPTY_APPS = computeEmptyProcessLimit(MAX_CACHED_APPS);
138
139    // The number of empty apps at which we don't consider it necessary to do
140    // memory trimming.
141    static final int TRIM_EMPTY_APPS = MAX_EMPTY_APPS/2;
142
143    // The number of cached at which we don't consider it necessary to do
144    // memory trimming.
145    static final int TRIM_CACHED_APPS = (MAX_CACHED_APPS-MAX_EMPTY_APPS)/3;
146
147    // Threshold of number of cached+empty where we consider memory critical.
148    static final int TRIM_CRITICAL_THRESHOLD = 3;
149
150    // Threshold of number of cached+empty where we consider memory critical.
151    static final int TRIM_LOW_THRESHOLD = 5;
152
153    // Low Memory Killer Daemon command codes.
154    // These must be kept in sync with the definitions in lmkd.c
155    //
156    // LMK_TARGET <minfree> <minkillprio> ... (up to 6 pairs)
157    // LMK_PROCPRIO <pid> <prio>
158    // LMK_PROCREMOVE <pid>
159    static final byte LMK_TARGET = 0;
160    static final byte LMK_PROCPRIO = 1;
161    static final byte LMK_PROCREMOVE = 2;
162
163    // These are the various interesting memory levels that we will give to
164    // the OOM killer.  Note that the OOM killer only supports 6 slots, so we
165    // can't give it a different value for every possible kind of process.
166    private final int[] mOomAdj = new int[] {
167            FOREGROUND_APP_ADJ, VISIBLE_APP_ADJ, PERCEPTIBLE_APP_ADJ,
168            BACKUP_APP_ADJ, CACHED_APP_MIN_ADJ, CACHED_APP_MAX_ADJ
169    };
170    // These are the low-end OOM level limits.  This is appropriate for an
171    // HVGA or smaller phone with less than 512MB.  Values are in KB.
172    private final int[] mOomMinFreeLow = new int[] {
173            12288, 18432, 24576,
174            36864, 43008, 49152
175    };
176    // These are the high-end OOM level limits.  This is appropriate for a
177    // 1280x800 or larger screen with around 1GB RAM.  Values are in KB.
178    private final int[] mOomMinFreeHigh = new int[] {
179            73728, 92160, 110592,
180            129024, 147456, 184320
181    };
182    // The actual OOM killer memory levels we are using.
183    private final int[] mOomMinFree = new int[mOomAdj.length];
184
185    private final long mTotalMemMb;
186
187    private long mCachedRestoreLevel;
188
189    private boolean mHaveDisplaySize;
190
191    private static LocalSocket sLmkdSocket;
192    private static OutputStream sLmkdOutputStream;
193
194    ProcessList() {
195        MemInfoReader minfo = new MemInfoReader();
196        minfo.readMemInfo();
197        mTotalMemMb = minfo.getTotalSize()/(1024*1024);
198        updateOomLevels(0, 0, false);
199    }
200
201    void applyDisplaySize(WindowManagerService wm) {
202        if (!mHaveDisplaySize) {
203            Point p = new Point();
204            wm.getBaseDisplaySize(Display.DEFAULT_DISPLAY, p);
205            if (p.x != 0 && p.y != 0) {
206                updateOomLevels(p.x, p.y, true);
207                mHaveDisplaySize = true;
208            }
209        }
210    }
211
212    private void updateOomLevels(int displayWidth, int displayHeight, boolean write) {
213        // Scale buckets from avail memory: at 300MB we use the lowest values to
214        // 700MB or more for the top values.
215        float scaleMem = ((float)(mTotalMemMb-350))/(700-350);
216
217        // Scale buckets from screen size.
218        int minSize = 480*800;  //  384000
219        int maxSize = 1280*800; // 1024000  230400 870400  .264
220        float scaleDisp = ((float)(displayWidth*displayHeight)-minSize)/(maxSize-minSize);
221        if (false) {
222            Slog.i("XXXXXX", "scaleMem=" + scaleMem);
223            Slog.i("XXXXXX", "scaleDisp=" + scaleDisp + " dw=" + displayWidth
224                    + " dh=" + displayHeight);
225        }
226
227        float scale = scaleMem > scaleDisp ? scaleMem : scaleDisp;
228        if (scale < 0) scale = 0;
229        else if (scale > 1) scale = 1;
230        int minfree_adj = Resources.getSystem().getInteger(
231                com.android.internal.R.integer.config_lowMemoryKillerMinFreeKbytesAdjust);
232        int minfree_abs = Resources.getSystem().getInteger(
233                com.android.internal.R.integer.config_lowMemoryKillerMinFreeKbytesAbsolute);
234        if (false) {
235            Slog.i("XXXXXX", "minfree_adj=" + minfree_adj + " minfree_abs=" + minfree_abs);
236        }
237
238        if (Build.SUPPORTED_64_BIT_ABIS.length > 0) {
239            // Increase the high min-free levels for cached processes for 64-bit
240            mOomMinFreeHigh[4] = (mOomMinFreeHigh[4]*3)/2;
241            mOomMinFreeHigh[5] = (mOomMinFreeHigh[5]*7)/4;
242        }
243
244        for (int i=0; i<mOomAdj.length; i++) {
245            int low = mOomMinFreeLow[i];
246            int high = mOomMinFreeHigh[i];
247            mOomMinFree[i] = (int)(low + ((high-low)*scale));
248        }
249
250        if (minfree_abs >= 0) {
251            for (int i=0; i<mOomAdj.length; i++) {
252                mOomMinFree[i] = (int)((float)minfree_abs * mOomMinFree[i]
253                        / mOomMinFree[mOomAdj.length - 1]);
254            }
255        }
256
257        if (minfree_adj != 0) {
258            for (int i=0; i<mOomAdj.length; i++) {
259                mOomMinFree[i] += (int)((float)minfree_adj * mOomMinFree[i]
260                        / mOomMinFree[mOomAdj.length - 1]);
261                if (mOomMinFree[i] < 0) {
262                    mOomMinFree[i] = 0;
263                }
264            }
265        }
266
267        // The maximum size we will restore a process from cached to background, when under
268        // memory duress, is 1/3 the size we have reserved for kernel caches and other overhead
269        // before killing background processes.
270        mCachedRestoreLevel = (getMemLevel(ProcessList.CACHED_APP_MAX_ADJ)/1024) / 3;
271
272        // Ask the kernel to try to keep enough memory free to allocate 3 full
273        // screen 32bpp buffers without entering direct reclaim.
274        int reserve = displayWidth * displayHeight * 4 * 3 / 1024;
275        int reserve_adj = Resources.getSystem().getInteger(com.android.internal.R.integer.config_extraFreeKbytesAdjust);
276        int reserve_abs = Resources.getSystem().getInteger(com.android.internal.R.integer.config_extraFreeKbytesAbsolute);
277
278        if (reserve_abs >= 0) {
279            reserve = reserve_abs;
280        }
281
282        if (reserve_adj != 0) {
283            reserve += reserve_adj;
284            if (reserve < 0) {
285                reserve = 0;
286            }
287        }
288
289        if (write) {
290            ByteBuffer buf = ByteBuffer.allocate(4 * (2*mOomAdj.length + 1));
291            buf.putInt(LMK_TARGET);
292            for (int i=0; i<mOomAdj.length; i++) {
293                buf.putInt((mOomMinFree[i]*1024)/PAGE_SIZE);
294                buf.putInt(mOomAdj[i]);
295            }
296
297            writeLmkd(buf);
298            SystemProperties.set("sys.sysctl.extra_free_kbytes", Integer.toString(reserve));
299        }
300        // GB: 2048,3072,4096,6144,7168,8192
301        // HC: 8192,10240,12288,14336,16384,20480
302    }
303
304    public static int computeEmptyProcessLimit(int totalProcessLimit) {
305        return totalProcessLimit/2;
306    }
307
308    private static String buildOomTag(String prefix, String space, int val, int base) {
309        if (val == base) {
310            if (space == null) return prefix;
311            return prefix + "  ";
312        }
313        return prefix + "+" + Integer.toString(val-base);
314    }
315
316    public static String makeOomAdjString(int setAdj) {
317        if (setAdj >= ProcessList.CACHED_APP_MIN_ADJ) {
318            return buildOomTag("cch", "  ", setAdj, ProcessList.CACHED_APP_MIN_ADJ);
319        } else if (setAdj >= ProcessList.SERVICE_B_ADJ) {
320            return buildOomTag("svcb ", null, setAdj, ProcessList.SERVICE_B_ADJ);
321        } else if (setAdj >= ProcessList.PREVIOUS_APP_ADJ) {
322            return buildOomTag("prev ", null, setAdj, ProcessList.PREVIOUS_APP_ADJ);
323        } else if (setAdj >= ProcessList.HOME_APP_ADJ) {
324            return buildOomTag("home ", null, setAdj, ProcessList.HOME_APP_ADJ);
325        } else if (setAdj >= ProcessList.SERVICE_ADJ) {
326            return buildOomTag("svc  ", null, setAdj, ProcessList.SERVICE_ADJ);
327        } else if (setAdj >= ProcessList.HEAVY_WEIGHT_APP_ADJ) {
328            return buildOomTag("hvy  ", null, setAdj, ProcessList.HEAVY_WEIGHT_APP_ADJ);
329        } else if (setAdj >= ProcessList.BACKUP_APP_ADJ) {
330            return buildOomTag("bkup ", null, setAdj, ProcessList.BACKUP_APP_ADJ);
331        } else if (setAdj >= ProcessList.PERCEPTIBLE_APP_ADJ) {
332            return buildOomTag("prcp ", null, setAdj, ProcessList.PERCEPTIBLE_APP_ADJ);
333        } else if (setAdj >= ProcessList.VISIBLE_APP_ADJ) {
334            return buildOomTag("vis  ", null, setAdj, ProcessList.VISIBLE_APP_ADJ);
335        } else if (setAdj >= ProcessList.FOREGROUND_APP_ADJ) {
336            return buildOomTag("fore ", null, setAdj, ProcessList.FOREGROUND_APP_ADJ);
337        } else if (setAdj >= ProcessList.PERSISTENT_SERVICE_ADJ) {
338            return buildOomTag("psvc ", null, setAdj, ProcessList.PERSISTENT_SERVICE_ADJ);
339        } else if (setAdj >= ProcessList.PERSISTENT_PROC_ADJ) {
340            return buildOomTag("pers ", null, setAdj, ProcessList.PERSISTENT_PROC_ADJ);
341        } else if (setAdj >= ProcessList.SYSTEM_ADJ) {
342            return buildOomTag("sys  ", null, setAdj, ProcessList.SYSTEM_ADJ);
343        } else if (setAdj >= ProcessList.NATIVE_ADJ) {
344            return buildOomTag("ntv  ", null, setAdj, ProcessList.NATIVE_ADJ);
345        } else {
346            return Integer.toString(setAdj);
347        }
348    }
349
350    public static String makeProcStateString(int curProcState) {
351        String procState;
352        switch (curProcState) {
353            case -1:
354                procState = "N ";
355                break;
356            case ActivityManager.PROCESS_STATE_PERSISTENT:
357                procState = "P ";
358                break;
359            case ActivityManager.PROCESS_STATE_PERSISTENT_UI:
360                procState = "PU";
361                break;
362            case ActivityManager.PROCESS_STATE_TOP:
363                procState = "T ";
364                break;
365            case ActivityManager.PROCESS_STATE_IMPORTANT_FOREGROUND:
366                procState = "IF";
367                break;
368            case ActivityManager.PROCESS_STATE_IMPORTANT_BACKGROUND:
369                procState = "IB";
370                break;
371            case ActivityManager.PROCESS_STATE_BACKUP:
372                procState = "BU";
373                break;
374            case ActivityManager.PROCESS_STATE_HEAVY_WEIGHT:
375                procState = "HW";
376                break;
377            case ActivityManager.PROCESS_STATE_SERVICE:
378                procState = "S ";
379                break;
380            case ActivityManager.PROCESS_STATE_RECEIVER:
381                procState = "R ";
382                break;
383            case ActivityManager.PROCESS_STATE_HOME:
384                procState = "HO";
385                break;
386            case ActivityManager.PROCESS_STATE_LAST_ACTIVITY:
387                procState = "LA";
388                break;
389            case ActivityManager.PROCESS_STATE_CACHED_ACTIVITY:
390                procState = "CA";
391                break;
392            case ActivityManager.PROCESS_STATE_CACHED_ACTIVITY_CLIENT:
393                procState = "Ca";
394                break;
395            case ActivityManager.PROCESS_STATE_CACHED_EMPTY:
396                procState = "CE";
397                break;
398            default:
399                procState = "??";
400                break;
401        }
402        return procState;
403    }
404
405    public static void appendRamKb(StringBuilder sb, long ramKb) {
406        for (int j=0, fact=10; j<6; j++, fact*=10) {
407            if (ramKb < fact) {
408                sb.append(' ');
409            }
410        }
411        sb.append(ramKb);
412    }
413
414    // The minimum amount of time after a state change it is safe ro collect PSS.
415    public static final int PSS_MIN_TIME_FROM_STATE_CHANGE = 15*1000;
416
417    // The maximum amount of time we want to go between PSS collections.
418    public static final int PSS_MAX_INTERVAL = 30*60*1000;
419
420    // The minimum amount of time between successive PSS requests for *all* processes.
421    public static final int PSS_ALL_INTERVAL = 10*60*1000;
422
423    // The minimum amount of time between successive PSS requests for a process.
424    private static final int PSS_SHORT_INTERVAL = 2*60*1000;
425
426    // The amount of time until PSS when a process first becomes top.
427    private static final int PSS_FIRST_TOP_INTERVAL = 10*1000;
428
429    // The amount of time until PSS when a process first goes into the background.
430    private static final int PSS_FIRST_BACKGROUND_INTERVAL = 20*1000;
431
432    // The amount of time until PSS when a process first becomes cached.
433    private static final int PSS_FIRST_CACHED_INTERVAL = 30*1000;
434
435    // The amount of time until PSS when an important process stays in the same state.
436    private static final int PSS_SAME_IMPORTANT_INTERVAL = 15*60*1000;
437
438    // The amount of time until PSS when a service process stays in the same state.
439    private static final int PSS_SAME_SERVICE_INTERVAL = 20*60*1000;
440
441    // The amount of time until PSS when a cached process stays in the same state.
442    private static final int PSS_SAME_CACHED_INTERVAL = 30*60*1000;
443
444    // The amount of time during testing until PSS when a process first becomes top.
445    private static final int PSS_TEST_FIRST_TOP_INTERVAL = 3*1000;
446
447    // The amount of time during testing until PSS when a process first goes into the background.
448    private static final int PSS_TEST_FIRST_BACKGROUND_INTERVAL = 5*1000;
449
450    // The amount of time during testing until PSS when an important process stays in same state.
451    private static final int PSS_TEST_SAME_IMPORTANT_INTERVAL = 10*1000;
452
453    // The amount of time during testing until PSS when a background process stays in same state.
454    private static final int PSS_TEST_SAME_BACKGROUND_INTERVAL = 15*1000;
455
456    public static final int PROC_MEM_PERSISTENT = 0;
457    public static final int PROC_MEM_TOP = 1;
458    public static final int PROC_MEM_IMPORTANT = 2;
459    public static final int PROC_MEM_SERVICE = 3;
460    public static final int PROC_MEM_CACHED = 4;
461
462    private static final int[] sProcStateToProcMem = new int[] {
463        PROC_MEM_PERSISTENT,            // ActivityManager.PROCESS_STATE_PERSISTENT
464        PROC_MEM_PERSISTENT,            // ActivityManager.PROCESS_STATE_PERSISTENT_UI
465        PROC_MEM_TOP,                   // ActivityManager.PROCESS_STATE_TOP
466        PROC_MEM_IMPORTANT,             // ActivityManager.PROCESS_STATE_IMPORTANT_FOREGROUND
467        PROC_MEM_IMPORTANT,             // ActivityManager.PROCESS_STATE_IMPORTANT_BACKGROUND
468        PROC_MEM_IMPORTANT,             // ActivityManager.PROCESS_STATE_BACKUP
469        PROC_MEM_IMPORTANT,             // ActivityManager.PROCESS_STATE_HEAVY_WEIGHT
470        PROC_MEM_SERVICE,               // ActivityManager.PROCESS_STATE_SERVICE
471        PROC_MEM_CACHED,                // ActivityManager.PROCESS_STATE_RECEIVER
472        PROC_MEM_CACHED,                // ActivityManager.PROCESS_STATE_HOME
473        PROC_MEM_CACHED,                // ActivityManager.PROCESS_STATE_LAST_ACTIVITY
474        PROC_MEM_CACHED,                // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY
475        PROC_MEM_CACHED,                // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY_CLIENT
476        PROC_MEM_CACHED,                // ActivityManager.PROCESS_STATE_CACHED_EMPTY
477    };
478
479    private static final long[] sFirstAwakePssTimes = new long[] {
480        PSS_SHORT_INTERVAL,             // ActivityManager.PROCESS_STATE_PERSISTENT
481        PSS_SHORT_INTERVAL,             // ActivityManager.PROCESS_STATE_PERSISTENT_UI
482        PSS_FIRST_TOP_INTERVAL,         // ActivityManager.PROCESS_STATE_TOP
483        PSS_FIRST_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_IMPORTANT_FOREGROUND
484        PSS_FIRST_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_IMPORTANT_BACKGROUND
485        PSS_FIRST_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_BACKUP
486        PSS_FIRST_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_HEAVY_WEIGHT
487        PSS_FIRST_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_SERVICE
488        PSS_FIRST_CACHED_INTERVAL,      // ActivityManager.PROCESS_STATE_RECEIVER
489        PSS_FIRST_CACHED_INTERVAL,      // ActivityManager.PROCESS_STATE_HOME
490        PSS_FIRST_CACHED_INTERVAL,      // ActivityManager.PROCESS_STATE_LAST_ACTIVITY
491        PSS_FIRST_CACHED_INTERVAL,      // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY
492        PSS_FIRST_CACHED_INTERVAL,      // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY_CLIENT
493        PSS_FIRST_CACHED_INTERVAL,      // ActivityManager.PROCESS_STATE_CACHED_EMPTY
494    };
495
496    private static final long[] sSameAwakePssTimes = new long[] {
497        PSS_SAME_IMPORTANT_INTERVAL,    // ActivityManager.PROCESS_STATE_PERSISTENT
498        PSS_SAME_IMPORTANT_INTERVAL,    // ActivityManager.PROCESS_STATE_PERSISTENT_UI
499        PSS_SHORT_INTERVAL,             // ActivityManager.PROCESS_STATE_TOP
500        PSS_SAME_IMPORTANT_INTERVAL,    // ActivityManager.PROCESS_STATE_IMPORTANT_FOREGROUND
501        PSS_SAME_IMPORTANT_INTERVAL,    // ActivityManager.PROCESS_STATE_IMPORTANT_BACKGROUND
502        PSS_SAME_IMPORTANT_INTERVAL,    // ActivityManager.PROCESS_STATE_BACKUP
503        PSS_SAME_IMPORTANT_INTERVAL,    // ActivityManager.PROCESS_STATE_HEAVY_WEIGHT
504        PSS_SAME_SERVICE_INTERVAL,      // ActivityManager.PROCESS_STATE_SERVICE
505        PSS_SAME_SERVICE_INTERVAL,      // ActivityManager.PROCESS_STATE_RECEIVER
506        PSS_SAME_CACHED_INTERVAL,       // ActivityManager.PROCESS_STATE_HOME
507        PSS_SAME_CACHED_INTERVAL,       // ActivityManager.PROCESS_STATE_LAST_ACTIVITY
508        PSS_SAME_CACHED_INTERVAL,       // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY
509        PSS_SAME_CACHED_INTERVAL,       // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY_CLIENT
510        PSS_SAME_CACHED_INTERVAL,       // ActivityManager.PROCESS_STATE_CACHED_EMPTY
511    };
512
513    private static final long[] sTestFirstAwakePssTimes = new long[] {
514        PSS_TEST_FIRST_TOP_INTERVAL,        // ActivityManager.PROCESS_STATE_PERSISTENT
515        PSS_TEST_FIRST_TOP_INTERVAL,        // ActivityManager.PROCESS_STATE_PERSISTENT_UI
516        PSS_TEST_FIRST_TOP_INTERVAL,        // ActivityManager.PROCESS_STATE_TOP
517        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_IMPORTANT_FOREGROUND
518        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_IMPORTANT_BACKGROUND
519        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_BACKUP
520        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_HEAVY_WEIGHT
521        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_SERVICE
522        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_RECEIVER
523        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_HOME
524        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_LAST_ACTIVITY
525        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY
526        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY_CLIENT
527        PSS_TEST_FIRST_BACKGROUND_INTERVAL, // ActivityManager.PROCESS_STATE_CACHED_EMPTY
528    };
529
530    private static final long[] sTestSameAwakePssTimes = new long[] {
531        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_PERSISTENT
532        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_PERSISTENT_UI
533        PSS_TEST_SAME_IMPORTANT_INTERVAL,   // ActivityManager.PROCESS_STATE_TOP
534        PSS_TEST_SAME_IMPORTANT_INTERVAL,   // ActivityManager.PROCESS_STATE_IMPORTANT_FOREGROUND
535        PSS_TEST_SAME_IMPORTANT_INTERVAL,   // ActivityManager.PROCESS_STATE_IMPORTANT_BACKGROUND
536        PSS_TEST_SAME_IMPORTANT_INTERVAL,   // ActivityManager.PROCESS_STATE_BACKUP
537        PSS_TEST_SAME_IMPORTANT_INTERVAL,   // ActivityManager.PROCESS_STATE_HEAVY_WEIGHT
538        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_SERVICE
539        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_RECEIVER
540        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_HOME
541        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_LAST_ACTIVITY
542        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY
543        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_CACHED_ACTIVITY_CLIENT
544        PSS_TEST_SAME_BACKGROUND_INTERVAL,  // ActivityManager.PROCESS_STATE_CACHED_EMPTY
545    };
546
547    public static boolean procStatesDifferForMem(int procState1, int procState2) {
548        return sProcStateToProcMem[procState1] != sProcStateToProcMem[procState2];
549    }
550
551    public static long computeNextPssTime(int procState, boolean first, boolean test,
552            boolean sleeping, long now) {
553        final long[] table = test
554                ? (first
555                        ? sTestFirstAwakePssTimes
556                        : sTestSameAwakePssTimes)
557                : (first
558                        ? sFirstAwakePssTimes
559                        : sSameAwakePssTimes);
560        return now + table[procState];
561    }
562
563    long getMemLevel(int adjustment) {
564        for (int i=0; i<mOomAdj.length; i++) {
565            if (adjustment <= mOomAdj[i]) {
566                return mOomMinFree[i] * 1024;
567            }
568        }
569        return mOomMinFree[mOomAdj.length-1] * 1024;
570    }
571
572    /**
573     * Return the maximum pss size in kb that we consider a process acceptable to
574     * restore from its cached state for running in the background when RAM is low.
575     */
576    long getCachedRestoreThresholdKb() {
577        return mCachedRestoreLevel;
578    }
579
580    /**
581     * Set the out-of-memory badness adjustment for a process.
582     *
583     * @param pid The process identifier to set.
584     * @param uid The uid of the app
585     * @param amt Adjustment value -- lmkd allows -16 to +15.
586     *
587     * {@hide}
588     */
589    public static final void setOomAdj(int pid, int uid, int amt) {
590        if (amt == UNKNOWN_ADJ)
591            return;
592
593        long start = SystemClock.elapsedRealtime();
594        ByteBuffer buf = ByteBuffer.allocate(4 * 4);
595        buf.putInt(LMK_PROCPRIO);
596        buf.putInt(pid);
597        buf.putInt(uid);
598        buf.putInt(amt);
599        writeLmkd(buf);
600        long now = SystemClock.elapsedRealtime();
601        if ((now-start) > 250) {
602            Slog.w("ActivityManager", "SLOW OOM ADJ: " + (now-start) + "ms for pid " + pid
603                    + " = " + amt);
604        }
605    }
606
607    /*
608     * {@hide}
609     */
610    public static final void remove(int pid) {
611        ByteBuffer buf = ByteBuffer.allocate(4 * 2);
612        buf.putInt(LMK_PROCREMOVE);
613        buf.putInt(pid);
614        writeLmkd(buf);
615    }
616
617    private static boolean openLmkdSocket() {
618        try {
619            sLmkdSocket = new LocalSocket(LocalSocket.SOCKET_SEQPACKET);
620            sLmkdSocket.connect(
621                new LocalSocketAddress("lmkd",
622                        LocalSocketAddress.Namespace.RESERVED));
623            sLmkdOutputStream = sLmkdSocket.getOutputStream();
624        } catch (IOException ex) {
625            Slog.w(ActivityManagerService.TAG,
626                   "lowmemorykiller daemon socket open failed");
627            sLmkdSocket = null;
628            return false;
629        }
630
631        return true;
632    }
633
634    private static void writeLmkd(ByteBuffer buf) {
635
636        for (int i = 0; i < 3; i++) {
637            if (sLmkdSocket == null) {
638                    if (openLmkdSocket() == false) {
639                        try {
640                            Thread.sleep(1000);
641                        } catch (InterruptedException ie) {
642                        }
643                        continue;
644                    }
645            }
646
647            try {
648                sLmkdOutputStream.write(buf.array(), 0, buf.position());
649                return;
650            } catch (IOException ex) {
651                Slog.w(ActivityManagerService.TAG,
652                       "Error writing to lowmemorykiller socket");
653
654                try {
655                    sLmkdSocket.close();
656                } catch (IOException ex2) {
657                }
658
659                sLmkdSocket = null;
660            }
661        }
662    }
663}
664