6.5 Discussing Augmented Analytics Flashcards

1
Q

SAC ML features (6)

A
  1. Predictive forecast
  2. Predictive scenarios
  3. smart grouping
  4. smart discovery
  5. smart insight
  6. search to insight
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2
Q

What predictive features are supported on acquired data?

A
  1. time series forecasting
  2. search to insight
  3. Smart grouping
  4. smart insight
  5. smart predict
  6. smart discovery
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3
Q

On acquired data, Smart predict is support only for (2):

A

-datasets
-planning models
NOT analytics models

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4
Q

What predictive features are supported on live data?

A
  1. time series forecasting
  2. search to insight
  3. Smart grouping
  4. smart insight
  5. smart predict
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5
Q

What predictive features are supported on acquired data but not live data?

A

Smart Discover

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6
Q

search to insight * doesn’t support which live connections

A
  • SAP HANA Cloud

- SAP Data Warehouse Cloud

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7
Q

smart insights ** for live data are only supported for

A

S4HANA on prem

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8
Q

smart predict ** for live data are only supported for source

A

S4HANA on prem

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9
Q

What is Predictive Forecast

A

uses historical data to predict values

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10
Q

What algorithms does Predictive Forecast provide to choose from (4)

A
  • automatic
  • linear regression
  • triple exponential smoothing
  • add additional inputs
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11
Q

Features of Time Series Forecasting (4)

A
  • project expected values in future time periods
  • validate quality w/ confidence internal, hindcast and quality indicators
  • include additions factors (eg weather) to simulate values
  • creates trend charts and line charts
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12
Q

What is Smart Grouping

A
  • creates segments of data (clusters) across several measures
  • recommends # of groups based on your data
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13
Q

What is Smart Discovery

A
  • run on data sets to analyze data and generate a story
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14
Q

What tabs are included in Smart Discovery Stories

A
  • overview
  • key influencers
  • unexpected values
  • simulations
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15
Q

how does Smart Discovery - Core KPIs helps understand business drivers behind your KPIs (4)

A
  • classification and regression techniques
  • explore hidden structures and relationships
  • intuitive charts
  • natural language
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16
Q

Smart Discovery - simulation features (3)

A
  • see impact on KPI or value based on historical data
  • experiment to see how particular dimensions/kpis will impact the outcomes
  • add smart text explinations for visuals
17
Q

Because SAC runs on HANA, HANA’s core predictive features are available. What does this include? (2)

A
  • Automated Predictive Library (APL)

- Predictive Analysis Library (PAL)

18
Q

What do you need to chose to form the context for Smart Discover (2)

A
  • Target (measure/dim you want to know more about)
  • Entity (dims you want to explore in relation to the target, and level of aggregation of data for analysis). You can an include specific members of dims
19
Q

What is on the Smart Discovery Overview page? (3)

A
  • visuals to summarize target dim in relation to entity, has 2 parts:
  • one half gives summary of data
  • second half has visuals
20
Q

What is on the Smart Discovery Key Influencers page? (5)

A
  • ranks up to 10 dims/measures that impact the target
  • each has chart to show relationship w/ target
  • summary of the takeaway from these visualiztions
  • each chart has insight quality checkbox (eg confidence)
  • measures and dims are aggregated at level of Entity
21
Q

What is on the Smart Discovery Unexpected Values page? (5)

A

pg 195