Integrating Locals’ Importance-Performance Perception of Adaptation Behaviour into Invasive Alien Plant Species Management Surrounding Nyika National Park, Malawi
Abstract
:1. Introduction
2. Literature Review
2.1. Social-Economic and Ecological Impact of IAPS in Malawi
2.2. The Theory of Adaptive Capacity
2.3. Social Resilience: The Role of Adaptation in IAPS Management
2.4. Management and Adaptation of IAPS
3. Materials and Methods
3.1. Study Area
3.2. Research Design
Importance Performance Analysis
4. Results
4.1. Social Demographic Characteristics of the Respondents
4.2. Matrix of I-P Level of IAPS Adaptation and Management by Residents
4.2.1. Matrix of I-P Level of IAPS Adaptation and Management by Non-Farmers and Farmers
4.2.2. The IAPS Adaptation and Management Behaviours of Non-Farmers and Farmers
4.3. The IAPS Adaptation and Management Behaviour by Area of Residence
4.3.1. Matrix of I-P Level of IAPS Adaptation and Management Behaviour by Mhuju and Ntchenachena Residents
4.3.2. The IAPS Adaptation and Management Behaviour of Mhuju and Ntchenachena Residents
4.4. Locals’ Participating Behavior towards Change in IAPS Management
5. Discussion
5.1. Locals’ Awareness and Knowledge of IAPS and Management Behaviours
5.2. Locals’ Evaluation of IAPS and Strategic IAPS Management and Adaptation Decisions from IPA Approach
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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IAPS Management Issues | No. | Indicator of IAPS Management Behaviours (Abbreviation) | Literature |
---|---|---|---|
Locals’ knowledge of IAPS risks on rural livelihood (RISK) | A | Promoting community awareness of common IAPS and their impacts on livelihood (RISK1) | [4,19,51,57] |
B | Incorporating IAPS issues in the school curriculum (RISK2) | [4,51] | |
Locals’ ability to plan for IAPS management (PLAN) | C | Prioritizing IAPS for management (PLAN1) | [5,8,15] |
D | Formulating local IAPS management strategies (PLAN2) | [15] | |
Locals’ ability to cope with IAPS Impacts (COPE) | E | Using IAPS cuttings for medicine, timber, compositing and biomass (fuelwood, briquettes, charcoal) (COPE1) | [4,51] |
F | Venturing into economic activities other than farming (businesses, labour services) (COPE2) | [4,51] | |
Locals’ interest in adapting change to AIPS management (INTEREST) | G | Cooperating with local government to implement IAPS management projects (INTEREST1) | [5] |
H | Integrating IAPS management in extension services to reduce IAPS impact (INTEREST2) | [57] |
Variable | Level | All Respondents (n = 535) | Non-Farmers (n = 109) | Farmers (n = 426) | |||
---|---|---|---|---|---|---|---|
Frequency | % | Frequency | % | Frequency | % | ||
Location | Mhuju | 268 | 50.1 | 45 | 41.3 | 223 | 52.3 |
Ntchenachena | 267 | 49.9 | 64 | 58.7 | 203 | 47.7 | |
Years of stay in the location | <5 | 4 | 0.7 | 0 | 0 | 4 | 0.9 |
5–10 | 9 | 1.7 | 5 | 4.6 | 4 | 0.9 | |
10–15 | 44 | 8.2 | 16 | 14.7 | 28 | 6.6 | |
15–20 | 91 | 17.1 | 31 | 28.4 | 60 | 14.1 | |
>20 | 387 | 72.3 | 57 | 52.3 | 330 | 77.5 | |
Gender | Female | 277 | 51.8 | 54 | 49.5 | 223 | 52.3 |
Male | 258 | 48.2 | 55 | 50.5 | 203 | 47.7 | |
Age (years) | 18–25 | 5 | 0.9 | 2 | 1.8 | 3 | 0.7 |
26–35 | 74 | 13.8 | 18 | 16.5 | 56 | 13.1 | |
36–45 | 129 | 24.1 | 37 | 33.9 | 92 | 21.6 | |
46–55 | 149 | 27.9 | 37 | 33.9 | 112 | 26.3 | |
56–65 | 117 | 21.9 | 13 | 11.9 | 104 | 24.4 | |
66–75 | 49 | 9.2 | 1 | 1.0 | 48 | 11.3 | |
>76 | 12 | 2.2 | 1 | 1.0 | 11 | 2.6 | |
Education | Illiterate | 66 | 12.3 | 1 | 0.9 | 65 | 15.3 |
Primary School | 256 | 47.9 | 30 | 27.5 | 226 | 53.1 | |
Secondary School | 188 | 35.1 | 60 | 55.1 | 128 | 30.0 | |
College cert. Diploma | 25 | 4.7 | 18 | 16.5 | 7 | 1.6 | |
Income (MWK 1/month) | <30,000 | 318 | 59.4 | 5 | 4.6 | 313 | 73.5 |
30,001–50,000 | 99 | 18.5 | 20 | 18.3 | 79 | 18.5 | |
50,001–100,000 | 71 | 13.3 | 45 | 41.3 | 26 | 6.1 | |
100,001–150,000 | 38 | 7.1 | 32 | 29.4 | 6 | 1.4 | |
150,001–200,000 | 9 | 1.7 | 7 | 6.4 | 2 | 0.5 | |
Identification of IAPS 2 | Pinus patula | 493 | 26.9 | 103 | 28.0 | 390 | 26.7 |
Eucalyptus | 515 | 28.1 | 108 | 29.3 | 407 | 27.8 | |
Acacia mearnsii | 518 | 28.3 | 107 | 29.1 | 411 | 28.1 | |
Pteridium acquillinium | 305 | 16.7 | 50 | 13.6 | 255 | 17.4 |
No. | Indicator | Importance (Mean) | Performance (Mean) | Difference | t-Value | p-Value |
---|---|---|---|---|---|---|
All respondents (n = 535) | ||||||
A | Risk1 | 4.88(1) | 1.45(8) | 3.43 | 98.399 | 0.000 |
B | Risk2 | 4.84(2) | 1.71(3) | 3.13 | 75.545 | 0.000 |
C | Plan1 | 4.70(7) | 1.51(6) | 3.19 | 77.634 | 0.000 |
D | Plan2 | 4.80(3) | 1.55(5) | 3.25 | 87.258 | 0.000 |
E | Cope1 | 4.75(5) | 2.26(1) | 2.49 | 43.739 | 0.000 |
F | Cope2 | 4.75(5) | 2.25(2) | 2.50 | 43.934 | 0.000 |
G | Interest1 | 4.77(4) | 1.49(7) | 3.28 | 91.403 | 0.000 |
H | Interest2 | 4.72(6) | 1.57(4) | 3.15 | 74.850 | 0.000 |
Overall mean | 4.78 | 1.72 | ||||
Non-farmers (n = 109) | ||||||
A | Risk1 | 4.92(1) | 1.35(7) | 3.57 | 54.362 | 0.000 |
B | Risk2 | 4.89(2) | 1.89(3) | 3.00 | 31.615 | 0.000 |
C | Plan1 | 4.83(5) | 1.89(3) | 2.94 | 42.571 | 0.000 |
D | Plan2 | 4.83(5) | 1.52(5) | 3.31 | 47.432 | 0.000 |
E | Cope1 | 4.78(6) | 2.67(1) | 2.11 | 15.140 | 0.000 |
F | Cope2 | 4.84(4) | 2.12(2) | 2.72 | 14.687 | 0.000 |
G | Interest1 | 4.87(3) | 1.47(6) | 3.40 | 56.822 | 0.000 |
H | Interest2 | 4.84(4) | 1.63(4) | 3.21 | 45.014 | 0.000 |
Overall mean | 4.85 | 1.82 | ||||
Farmers (n = 426) | ||||||
A | Risk1 | 4.88(1) | 1.48(8) | 3.40 | 84.270 | 0.000 |
B | Risk2 | 4.83(2) | 1.67(3) | 3.16 | 68.853 | 0.000 |
C | Plan1 | 4.66(7) | 1.51(6) | 3.15 | 66.485 | 0.000 |
D | Plan2 | 4.79(3) | 1.55(5) | 3.24 | 74.807 | 0.000 |
E | Cope1 | 4.74(4) | 2.15(1) | 2.59 | 42.295 | 0.000 |
F | Cope2 | 4.73(5) | 2.12(2) | 2.61 | 43.042 | 0.000 |
G | Interest1 | 4.74(4) | 1.49(7) | 3.25 | 76.836 | 0.000 |
H | Interest2 | 4.69(6) | 1.56(4) | 3.13 | 63.189 | 0.000 |
Overall mean | 4.76 | 1.69 |
No. | Indicator | Importance (Mean) | Performance (Mean) | Difference | t-Value | p-Value |
---|---|---|---|---|---|---|
All respondents (n = 535) | ||||||
A | Risk1 | 4.88(1) | 1.45(8) | 3.43 | 98.399 | 0.000 |
B | Risk2 | 4.84(2) | 1.71(3) | 3.13 | 75.545 | 0.000 |
C | Plan1 | 4.70(7) | 1.51(6) | 3.19 | 77.634 | 0.000 |
D | Plan2 | 4.80(3) | 1.55(5) | 3.25 | 87.258 | 0.000 |
E | Cope1 | 4.75(5) | 2.26(1) | 2.49 | 43.739 | 0.000 |
F | Cope2 | 4.75(5) | 2.25(2) | 2.50 | 43.934 | 0.000 |
G | Interest1 | 4.77(4) | 1.49(7) | 3.28 | 91.403 | 0.000 |
H | Interest2 | 4.72(6) | 1.57(4) | 3.15 | 74.850 | 0.000 |
Overall mean | 4.78 | 1.72 | ||||
Mhuju residents (n = 272) | ||||||
A | Risk1 | 4.81(1) | 1.62(7) | 3.19 | 57.372 | 0.000 |
B | Risk2 | 4.79(2) | 1.87(3) | 2.92 | 48.943 | 0.000 |
C | Plan1 | 4.55(7) | 1.66(5) | 2.89 | 43.811 | 0.000 |
D | Plan2 | 4.71(3) | 1.66(5) | 3.05 | 52.867 | 0.000 |
E | Cope1 | 4.69(4) | 2.52(1) | 2.17 | 27.632 | 0.000 |
F | Cope2 | 4.68(5) | 2.51(2) | 2.17 | 28.781 | 0.000 |
G | Interest1 | 4.68(5) | 1.64(6) | 3.04 | 54.559 | 0.000 |
H | Interest2 | 4.60(6) | 1.69(4) | 2.91 | 43.952 | 0.000 |
Overall mean | 4.69 | 1.90 | ||||
Ntchenachena residents (n = 263) | ||||||
A | Risk1 | 4.96(1) | 1.29(8) | 3.67 | 103.163 | 0.000 |
B | Risk2 | 4.90(2) | 1.56(3) | 3.34 | 61.569 | 0.000 |
C | Plan1 | 4.85(5) | 1.35(6) | 3.50 | 86.958 | 0.000 |
D | Plan2 | 4.88(3) | 1.43(5) | 3.45 | 79.745 | 0.000 |
E | Cope1 | 4.81(8) | 1.99(1) | 2.82 | 36.372 | 0.000 |
F | Cope2 | 4.82(7) | 1.98(2) | 2.84 | 35.258 | 0.000 |
G | Interest1 | 4.86(4) | 1.33(7) | 3.53 | 89.440 | 0.000 |
H | Interest2 | 4.84(6) | 1.44(4) | 3.40 | 72.563 | 0.000 |
Overall mean | 4.87 | 1.55 |
Variable Names | Logit Model | Probit Model | ||||||
---|---|---|---|---|---|---|---|---|
Importance on IAPS Management and Adaptation (Model I) | Performance on IAPS Management and Adaptation (Model II) | Importance on IAPS Management and Adaptation (Model I) | Performance on IAPS Management and Adaptation (Model II) | |||||
Coeff. | Std Error | Coeff. | Std Error | Coeff. | Std Error | Coeff. | Std Error | |
Constant | −7.436 *** | 1.969 | −0.579 | 0.922 | −3.825 *** | 0.984 | −0.184 | 0.497 |
Age (1 aged 50.5 years above, otherwise 0) | 2.242 * | 1.189 | 1.724 ** | 0.809 | 1.177 * | 0.614 | 0.833 ** | 0.376 |
Income (1 above MWK 30,000, otherwise 0) | 1.887 | 1.207 | 2.103 ** | 1.068 | 1.048 * | 0.622 | 0.946 ** | 0.452 |
Education (1 literate, otherwise 0) | 1.254 | 0.943 | 1.480 * | 0.800 | 0.519 | 0.443 | 0.616 * | 0.358 |
Site (1 Ntchenachena, otherwise 0) | 6.873 *** | 1.739 | 3.325 *** | 1.083 | 3.380 *** | 0.781 | 1.481 *** | 0.430 |
Problem/Concern of IAPS (1 mentioned 2–7 problems of IAPS, otherwise 0) | 1.821 * | 1.013 | 1.584 ** | 0.702 | 0.928 * | 0.481 | 0.828 *** | 0.338 |
FC 1/VNRMC 2 member (1 member, otherwise 0) | −2.051 * | 10.621 | −0. 854 | 0.800 | −1.003 * | 0.553 | −0.463 | 0.407 |
Discuss IAPS in FC/VNRMCS (1 discussed, otherwise 0) | 2.459 * | 1.062 | 1.523 | 0.927 | 1.091 * | 0.605 | 0.773 * | 0.453 |
Mean Importance | 2.142 *** | 0.470 | - | - | 1.091 * | 0.233 | - | - |
Mean Performance | - | - | 0.948 * | 0.535 | - | - | 0.517 * | 0.270 |
AIC 3 | 68.3 | 108.7 | 68.2 | 109.2 | ||||
AIC/N | 0.128 | 0.203 | 0.127 | 0.204 | ||||
LLR 4 | 86.46 | 46.13 | 86.65 | 45.58 | ||||
Chi-Square Value | χ2 (8, 0.01) = 20.09 |
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Kanyangale, B.-I.; Lee, C.-H. Integrating Locals’ Importance-Performance Perception of Adaptation Behaviour into Invasive Alien Plant Species Management Surrounding Nyika National Park, Malawi. Forests 2023, 14, 1728. https://doi.org/10.3390/f14091728
Kanyangale B-I, Lee C-H. Integrating Locals’ Importance-Performance Perception of Adaptation Behaviour into Invasive Alien Plant Species Management Surrounding Nyika National Park, Malawi. Forests. 2023; 14(9):1728. https://doi.org/10.3390/f14091728
Chicago/Turabian StyleKanyangale, Blessings-Isaac, and Chun-Hung Lee. 2023. "Integrating Locals’ Importance-Performance Perception of Adaptation Behaviour into Invasive Alien Plant Species Management Surrounding Nyika National Park, Malawi" Forests 14, no. 9: 1728. https://doi.org/10.3390/f14091728
APA StyleKanyangale, B. -I., & Lee, C. -H. (2023). Integrating Locals’ Importance-Performance Perception of Adaptation Behaviour into Invasive Alien Plant Species Management Surrounding Nyika National Park, Malawi. Forests, 14(9), 1728. https://doi.org/10.3390/f14091728