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Leslie LamportMassachusetts Computer
Associates, Inc.
Presented by Lokendra
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A common ‘Resource’
Node A Node B
request A request B
A Distributed System
Q. WHICH REQUEST WAS MADE Q. WHICH REQUEST WAS MADE FIRST?FIRST?
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SolutionSolution
A Global Clock ??
Global Synchronization?
A common ‘Resource’
Node A Node B
request A request B
A Distributed System
Q. WHICH REQUEST WAS MADE Q. WHICH REQUEST WAS MADE FIRST?FIRST?
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Individual Clocks?
Are individual clocks accurate, precise?
One clock might run faster/slower?
Q. WHICH REQUEST WAS MADE Q. WHICH REQUEST WAS MADE FIRST?FIRST?A common
‘Resource’
Node A Node B
request A request B
A Distributed System
SolutionSolution
10:00 AM 10:02 AM
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Synchronization in a Distributed System!• Event Ordering : Which event occurred first?• How to sync the clocks across the nodes?
Can we define notion of ‘happened-before’ without using physical clocks?
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Develop a logical model of event ordering (without the use of physical clocks)• Might result into Anomalous Behavior?
Bring in ‘Physical’ Clocks to integrate with the logical model • Fix anomalous behavior
Make sure that the ‘Physical’ Clocks are synced.
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The system is composed of a collection of processes
Each process consists of a sequence of events (instructions/subprogram)
Process P : instr1 instr2 instr3 … (Total Order)
‘Sending’ and ‘Receiving’ messages among processes• ‘Send’ : an event• ‘Receive’ : an event
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a ‘Happened Before’ b : a→b1. If a and b are events in the same process,
and a comes before b, then a → b.
2. If a :message sentb : receipt of the same message then a → b.
3. If a → b and b → c then a → c.
4. Two distinct events a and b are said to be concurrent if a -/->b and b -/->a
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p1 → p2
p1 → q2
p1 → r4
q2 -/-> p2
q3 -/-> p2
A clock Ci for each process Pi to be a function which assigns a number Ci(a) to any event a in that process.
Logical Clock (Ci ) has no relation with the Physical Clock.
Clock Condition:For any event a, b: If a→b, then C(a) < C(b)
Converse NOT True! • Concurrent processes?
Clock Condition is satisfied if :C1. If a and b are events in process Pi, and a comes before
b, then Ci(a) < Ci(b).C2. If a is the sending of a message by process Pi and b is
the receipt of that message by process Pj, thenCi(a) < Cj(b)
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•A clock ticks through every event•The clicks happen between the events
Following implementation rules are proposed to satisfy the clock condition:
IR1. Each process Pi increments Ci between any two successive events.
IR2. (a) If event a is the sending of a message m by process Pi, then the message m contains a timestamp Tm = Ci (a).
(b) Upon receiving a message m, process Pi sets Ci greater than or equal to its present value and greater than Tm.
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Correction of clocks
One more relation < to break ties, arbitrary total order of events
The total order relation => is defined as:
a => b, if and only if(i) Ci(a) < Cj(b)(ii) Ci(a) = Cj(b) and Pi< Pj
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I. A process using the resource must release it before it can be given to another process.
II. Requests for the resource must be granted in the order in which they were made.
I. Does not indicate what should be done when two processes request for the resource at the same time?
III. If every process using the resource eventually releases it, then every request is eventually granted (no starvation)
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Each process maintains its own request queue:
The Algorithm:1. Resource request:
1. Process Pi sends the message Tm : Pi requests resource to every other 2. Pi also puts the request message on its request queue.
2. Resource request receipt.:1. Pi receives Pi’s request message. 2. Pj then puts the message on its request queue 3. Pj sends an acknowledgement to Pi (timestamped later)
3. Resource release:1. Pi removes request message Tm : Pi requests resource from its queue 2. sends the release message Pi releases resource to every other process.
4. Resource release receipt 1. Pj receive’s Pi’s resource release message. 2. Pj removes the Tm : Pi requests resource from its request queue.
5. Resource allocation. Pi is allocated the resource when:
1. There is a Tm : Pi requests resource message in Pi ’s request queue which is ordered before and other request in the queue by ).
2. Pi has received messages from every other process timestamped later than Tm .16
NOTE:• Each process independently follows these
rules• There is no central synchronizing process or
central storage.• Can be viewed as State Machine C x S→ S
C : set of commands for eg resource request S : Machine’s state
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Two possible ways to avoid such anomalous behavior:
1. Give the user the responsibility for avoiding anomalous behavior. • When the call is made, b be given a later timestamp than a.
2. Let S : set of all system events Š : Set containing S + relevant external eventsLet → denote the “happened before” relation for Š .
Strong Clock Condition:For any events a; b in Š : if a → b then C(a) < C(b)
One can construct physical clocks, running quite independently, and having the Strong Clock Condition, therefore eliminating anomalous behavior.
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PC1: | dCi(t)/dt - 1 | < ĸĸ <<1
PC2: For all i,j : |Ci(t) – Cj(t)| < ԑ
2 clocks don’t run at the same rate:• They may drift further
Need of an algorithm that PC2 always holds
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Let μ be a number such that a→b and a occurs at t in Pi and b in Pj, then b occurs later than t+ μ • μ : less than the shortest transmission time
To avoid anomalous behavior, we need:
Ci(t+ μ) – Cj(t) > 0, guaranteed if ԑ/(1- ĸ) ≤ μ
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μm is the minimum delay of a message and is known by the processes
IR1’ : For each i, Ci is differentiable at t and dCi(t)/dt >0
IR2’: • a) Pi sends a message at t, timestamp Tm=Ci(t)• Upon receipt of m, Pj sets Cj(t’) to max (Cj(t’),
Tm+ μm )
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Lamport clocks limitation: • If (ab) then C(a) < C(b) but • Reverse is not true!!
Nothing can be said about events by comparing time-stamps!
If C(A) < C(B), then ??
Need to maintain causality• Causal delivery:• If send(m) -> send(n) => deliver(m) ->
deliver(n)• Need a time-stamping mechanism such that:
If T(A) < T(B) then A should have causally preceded B
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(1, 0 , 0) (2, 0, 0) (3, 5, 2)e11 e12 e13
(0, 1, 0) (2, 2, 0) (2, 3, 1) (2, 5, 2)
(0, 0, 1) (0, 0, 2)
e21 e22 e23 e24
e31 e32
P1
P2
P3
(2,4,2) e25
Each process i maintains a vector Vi
Vi[i] : number of events that have occurred at iVi[j] : number of events i knows have occurred at process j
Less than or equal: ts(a) ≤ ts(b) if ts(a)[i] is ≤ ts(b)[i] for all i. For eg [ (3,3,5) ≤ (3,4,5) ]
ts(e11) = (1, 0, 0) and ts(e22) = (2, 2, 0), which shows e11 e22
Causal Delivery :if m is sent by P1 and ts(m) is (3, 4, 0) and you are P3, you should already have received exactly 2 messages from P1 and at least 4 from P2
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‘Happens Before’ is just partial ordering
To make it total, arbitrary ties method can be used• But can lead to Anomalous behavior
But we can use synchronized clocks to resolve
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