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Lecture Structure
- Modeling (00:01:45)
- Information Technology Infrastructure Library (00:01:45)
- System understanding evolved from hardware to software to IT infrastructures (00:01:45)
- Component based models Reliability block fault tree (00:01:45)
- Dependable Systems (00:01:47)
- Modeling (00:01:49)
- History (00:01:50)
- Modeling (00:01:51)
- E ample Failure Space (00:02:55)
- Modeling (00:04:29)
- Examples Failure Mode and Effect Analysis Preliminary Hazards (00:04:29)
- Inductive methods Reasoning from specific cases to a general conclusion (00:04:29)
- General Rules (00:04:30)
- Inductive Modeling Approach (00:04:31)
- Availability (00:04:31)
- Probability that ca occurs (00:04:31)
- operational at any given point in model time (00:04:31)
- ca The binary event that ca is (00:04:31)
- Serial Case (00:05:36)
- with a new model 7 (00:05:36)
- Benefit of replacing the web server (00:05:36)
- Benefit replacing the database (00:05:36)
- Example Chain of web sewer (00:05:36)
- Help probability theory The probability of an event (00:05:36)
- Serial Components (00:06:14)
- Parallel (00:07:23)
- Parallel Components (00:07:24)
- K 0f N Systems (00:08:30)
- Examples (00:09:09)
- Reliability Block Diagrams (00:09:16)
- l 0f N f0r R (00:14:32)
- Complex (00:14:33)
- Structure Functions F (00:22:09)
- Coherent Structures (00:25:37)
- If the system component level would fan than the (00:28:52)
- The of the structure function component level parallel redundancy (00:28:52)
- Given state x and y for (00:28:52)
- Coherent Structures (00:35:16)
- Structure Functions F (00:35:17)
- Coherent Structures (00:35:28)
- There may be cases where only the redundancy design survives (00:35:32)
- If the system component level redundancy would fail then the system level (00:35:32)
- The structure function component level parallel redundancy (00:35:32)
- Given two state vectors x and y for (00:35:32)
- Analysis Fault Trees (00:36:15)
- Analysis Fault Trees Structure analysis effort grows exponentially with the number of components (00:38:20)
- Events and gates are not system (00:38:20)
- In Itself not a model (00:38:20)
- Includes faults that to (00:38:20)
- Fault Trees (00:38:20)
- Fault Analysis (00:38:21)
- Events and gates are not system (00:38:21)
- In itself not a quantitative (00:38:21)
- Graphical representation of structure (00:38:21)
- calculated by lower level probabilities (00:38:21)
- Probability of a higher level event can be (00:38:21)
- with component hardware failures (00:38:21)
- Basic events can be associated (00:38:21)
- Static Fault Trees (00:43:13)
- Examples AND Gate (00:44:33)
- Examples OR Gate (00:45:56)
- Examples (00:46:41)
- Examples Conditioning Event (00:47:25)
- Examples Priority AND Gate (00:48:00)
- Cut Sets (00:48:20)
- TOP does not occur (00:48:20)
- A singleton cut set shows (00:48:20)
- A long shows low a short shows high vulnerability (00:48:20)
- Minimal cut set Minimal combination of basic events that induce TOP (00:48:20)
- Cut set Any f basic events if all occur at the same (00:48:20)
- Qualitative Analysis (00:53:47)
- Finding the dominant cut Calculate the probability of each minimal cut set (00:53:47)
- Can help with quantitative analysis (00:53:47)
- Methods for finding (00:55:54)
- Determine probabilities for cut sets to find critical path (00:55:54)
- Boolean Reduction Example (00:57:03)
- Quantitative Analysis Fault Trees (01:02:07)
- Utilize probability of independent (01:02:07)
- independence of basic events (01:02:07)
- Determine probability TOP event by (01:02:07)
- for Obtaining Cut Sets (01:03:43)
- Each resulting row forms a cut set (01:03:43)
- Iteratively replace gates in rows (01:03:43)
- AND gate Each Input to the gate (01:03:43)
- OR gate Each input to the gate is (01:03:43)
- Fixing Cut Sets (01:07:57)
- Dynamic Fault Trees (01:09:13)
- Dynamic Fault (01:09:14)
- for Modeling (01:11:42)
- Dynamic Fault Treas (01:13:03)
- Example (01:18:27)
- Dynamic Fault Treas (01:21:45)
- Example (01:21:51)
- failure (01:24:37)
- Interface failure (01:24:37)
- Memory (01:24:37)
- Bus system (01:24:38)
- type c (01:25:04)
- L type static (01:25:04)
- component failure rates (01:25:06)
- Basic assumptions for (01:25:06)
- analysis with (01:25:06)
- Processing and memory system (01:25:06)
- Define scope version components to be resolution on (01:25:51)
- Q Define l (01:25:51)
- Fault Construction (01:25:52)
- can be tested in success domain by inverting all statements and gates (01:25:52)
- Proper and naming as very important and (01:25:52)
- Report I L1 G SUMMARY 0 re SCOPE the q system m n SM Z TOP N as n0I I Phases Human THE 1 acne Shaw Tree as at the Tree Include Data 5 ur0 ill PamSe1s l Common Cause Search VII el as (01:25:53)
- Representing 3 Structures By Paths Cut Sets (01:25:56)
- Inclusion Exclusion Principle F l i jU52jl1U 1 2 4 I I I I2 5 I I I I5 4nimnl nut K failed (01:25:57)
- Report (01:25:58)
Keyword
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